[0001] The present invention relates to a method for controlling undesired vegetation by
application of acylhydrazides of the general formula I defined below.
[0002] Hordiyenko et al, Eur. J. Org. Chem. 2006, 2833-2842 describes structurally similar compounds and their amide-type isomerism, but does
not mention nor any herbicidal neither any pharmaceutical activity or use of these
compounds for treating or preventing parasitic and/or bacterial infections.
[0003] Surprisingly it has now been found that acylhydrazides of formula I effectively control
undesired vegetation and are also useful for treating or preventing parasitic and/or
bacterial infections.
[0004] The herbicidal properties of known compounds with regard to the harmful plants are
not always entirely satisfactory. Furthermore there is a need for novel compounds
and compositions for use in treating or preventing parasitic and/or bacterial infections.
[0005] Accordingly, the present invention provides a method of controlling undesired vegetation,
which comprises allowing an herbicidal active amount of at least one acylhydrazide
of formula I

wherein the variables are as defined below:
R1 is a five- or six-membered monocyclic or eight- to ten-membered bicyclic heteroaryl
having one to three nitrogen atoms, one or two nitrogen atoms and one sulfur atom,
one nitrogen and one oxygen atom, one oxygen atom, or one sulfur atom, which may be
partially or fully halogenated and/or may be substituted by one to three substituents
selected from the group consisting of cyano, nitro, C1-C6-alkyl, C3-C6-cycloalkyl, C1-C6-haloalkyl, C2-C6-alkenyl, C2-C6-alkynyl, hydroxy, C1-C6-alkoxy, C3-C6-cycloalkoxy, C1-C6-haloalkoxy, C3-C6-alkenyloxy, C3-C6-alkynyloxy, C1-C6-alkylthio, C1-C6-alkylsulfinyl, C1-C6-alkylsulfonyl, amino, C1-C6-alkylamino, di(C1-C6)alkylamino, C1-C6-alkylsulfonylamino, N(C1-C6-alkylsulfonyl)-N(C1-C6-alkyl)amino, five- or six-membered heterocyclyl having one or two nitrogen atoms,
one nitrogen and one oxygen atom or one nitrogen and one sulfur atom, or phenyl, which
itself may be partially or fully halogenated and/or may be substituted by one to three
substituents selected from of the group consisting of C1-C6-alkyl, C1-C6-haloalkyl and C1-C6-alkoxy;
R2 and R3 together with the carbon atoms (a) and (b) to which they are attached form a five-
or six-membered monocyclic or eight- to ten-membered bicyclic cyclus,
which is partially unsaturated or aromatic,
which may contain one to three nitrogen atoms, one or two nitrogen atoms and one sulfur
atom, one nitrogen and one oxygen atom, one or two sulfur atoms, or one or two oxygen
atoms; and
which may be partially or fully halogenated and/or may be substituted by one to three
substituents selected from the group consisting of cyano, nitro, C1-C6-alkyl, C3-C6-cycloalkyl, C1-C6-haloalkyl, C1-C6-hydroxyalkyl, C1-C6-alkoxy-C1-C6-alkyl, C1-C6-haloalkoxy-C1-C6-alkyl, amino-C1-C6-alkyl, (C1-C6-alkyl)amino-C1-C6-alkyl, di(C1-C6-alkyl)amino-C1-C6-alkyl, C2-C6-alkenyl, C2-C6-haloalkenyl, C2-C6-hydroxyalkenyl, C1-C6-alkoxy-C2-Cs-alkenyl, C1-C6-haloalkoxy-C2-C6-alkenyl, amino-C2-C6-alkenyl, (C1-C6-alkyl)amino-C2-C6-alkenyl, di(C1-C6-alkyl)amino-C2-C6-alkenyl, C2-C6-alkynyl, C2-C6-haloalkynyl, C2-C6-hydroxyalkynyl, C1-C6-alkoxy-C2-C6-alkynyl, C1-C6-haloalkoxy-C2-C6-alkynyl, amino-C2-C6-alkynyl, (C1-C6-alkyl)amino-C2-C6-alkynyl, di(C1-C6-alkyl)amino-C2-C6-alkynyl, C1-C6-alkylcarbonyl, hydroxycarbonyl, C1-C6-alkoxycarbonyl, aminocarbonyl, (C1-C6-alkyl)aminocarbonyl, di(C1-C6-alkyl)aminocarbonyl, hydroxy, C1-C6-alkoxy, C1-C6-haloalkoxy, C3-C6-cycloalkoxy, C3-C6-alkenyloxy, C3-C6-alkynyloxy, C1-C6-alkylcarbonyloxy, C1-C6-hydroxyalkoxy, C1-C6-alkoxy-C1-C6-alkoxy, C1-C6-haloalkoxy-C1-C6alkoxy, amino-C1-C6-alkoxy, (C1-C6-alkyl)amino-C1-C6-alkoxy, di(C1-C6-alkyl)amino-C1-C6-alkoxy, C1-C6-alkylsulfonyloxy, (C1-C6-alkyl)aminocarbonyl(C1-C6-alkyl)oxy, di(C1-C6-alkyl)-aminocarbonyloxy, C1-C6-alkylthio, C3-C6-cycloalkylthio, C3-C6-alkenylthio, C3-C6-alkynylthio, C1-C6-hydroxyalkylthio, C1-C6-alkoxy-C1-C6-alkylthio, C1-C6-haloalkoxy-C1-C6-alkylthio, amino-C1-C6-alkylthio, (C1-C6-alkyl)amino-C1-C6-alkylthio, di(C1-C6-alkyl)amino-C1-C6-alkylthio, amino, C1-C6-alkylamino, di-(C1-C6-)alkylamino, C3-C6-cycloalkylamino, C3-C6-alkenylamino, C3-C6-alkynylamino, C1-C6-hydroxyalkylamino, C1-C6-alkoxy-C1-C6-alkylamino, C1-C6-haloalkoxy-C1-C6-alkylamino, amino-C1-C6-alkylamino, (C1-C6-alkyl)amino-C1-C6-alkylamino, di(C1-C6-alkyl)amino-C1-C6-alkylamino, C1-C6-alkylsulfonylamino, C1-C6-alkylsulfonyl(C1-C6-alkyl)amino, (C1-C6-alkyl)aminosulfonylamino, di(C1-C6-alkyl)aminosulfonylamino, formylamino, formyl(C1-C6-alkyl)amino, (C1-C6-alkyl)carbonylamino, N(C1-C6-alkylcarbonyl)-N(C1-C6-alkyl)amino, (C1-C6-alkyl)aminocarbonylamino, di(C1-C6-alkyl)aminocarbonylamino, (C1-C6-alkyl)aminocarbonyl(C1-C6-alkyl)amino, C1-C6-alkylsulfinyl, C1-C6-alkylsulfonyl, C3-C6-cycloalkylsulfonyl, C3-C6-alkenylsulfonyl, C3-C6-alkynylsulfonyl, C1-C6-hydroxyalkylsulfonyl, C1-C6-alkoxy-C1-C6-alkylsulfonyl, C1-C6-haloalkoxy-C1-C6-alkylsulfonyl, amino-C1-C6-alkylsulfonyl, (C1-C6-alkyl)-amino-C1-C6-alkylsulfonyl, di(C1-C6-alkyl)amino-C1-C6-alkylsulfonyl, aminosulfonyl, (C1-C6-alkyl)aminosulfonyl, di(C1-C6-alkyl)aminosulfonyl, phenyl, phenylcarbonyl, phenyloxy, phenylcarbonyloxy, phenylthio,
phenylsulfinyl, phenylsulfonyl, phenylsulfonyloxy, phenylamino, N(phenyl)-N(C1-C6-alkyl)amino, phenylcarbonylamino, N-phenylcarbonyl-N(C1-C6-alkyl)amino,
wherein each of the phenyl groups may be partially or fully halogenated and/or may
carry one to three substituents selected from the group consisting of cyano, C1-C6-alkyl, C1-C6-haloalkyl, hydroxy, C1-C6-alkoxy, C1-C6-alkylcarbonyloxy, C1-C6-haloalkoxy, C3-C6-alkenyloxy, C3-C6-alkynyloxy, C1-C6-alkylthio, C1-C6-alkylsulfonyl; heterocyclyl, heterocyclyl-C1-C6-alkyl, heterocyclyl-C2-C6-alkenyl, heterocyclyl-C2-C6-alkynyl, heterocydyl-C1-C6-alkoxy, heterocyclyl-C1-C6-alkylthio, heterocydyl-C1-C6-alkylamino, heterocyclyl-C1-C6-alkylsulfonyl, heterocyclyloxy, heterocyclylthio, heterocyclylsulfinyl, heterocyclylsulfonyl,
heterocyclylsulfonyloxy, heterocyclylcarbonyl, heterocyclylcarbonyloxy, heterocyclylamino,
heterocydyl-[(C1-C6-alkyl)amino], heterocyclylcarbonylamino, heterocyclylcarbonyl[(C1-C6-alkyl)amino],
wherein each of the heterocyclyl groups being three- to seven-membered and having
one to three nitrogen atoms, one or two nitrogen atoms and one sulfur atom, one nitrogen
atom and one oxygen atom, one oxygen atoms, one or two sulfur atoms, one oxygen atom,
or one sulfur atom, and wherein each of the heterocyclyl groups may be partially or
fully halogenated and/or may be substituted with one to three substituents selected
from the group consisting of cyano, C1-C6-alkyl, C1-C6-haloalkyl, hydroxy, mercapto, C1-C6-alkoxy, C1-C6-alkylcarbonyloxy, C1-C6-haloalkoxy, C3-C6-alkenyloxy, C3-C6-alkynyloxy, C1-C6-alkylthio, C1-C6-alkylsulfonyl;
and
R4 is hydrogen, formyl or C1-C6-alkylcarbonyl;
including its salts; to act on plants, their environment or on seed.
[0006] The present invention also provides agricultural compositions comprising at least
one acylhydrazide of formula I and at least one auxiliary customary for formulating
crop protection agents and a process for the preparation of such compositions.
[0007] Further surprisingly it has been found that the acylhydrazides of formula I can be
used effectively for treating or preventing infections, preferably parasitic and/or
bacterial infections.
[0008] Accordingly the present invention also provides acylhydrazides of formula I for use
as a medicament.
[0009] Further the present invention relates also to a method of treating or preventing
infections, preferably parasitic and/or bacterial infections in a subject, which comprises
administering to the subject a therapeutically effective amount of at least one acylhydrazide
of formula I as defined, including the pharmaceutically acceptable salts thereof.
[0010] Furthermore the present invention relates to the use of an acylhydrazide of formula
I as defined, including its pharmaceutically acceptable salts, for the preparation
of a medicament for the therapeutic and/or prophylactic treatment of infections.
[0011] In addition the present invention provides pharmaceutical compositions comprising
at least one acylhydrazide of formula I and at least one auxiliary customary for formulating
pharmaceuticals and a process for the preparation of such pharmaceutical compositions.
[0012] The present invention also provides acylhydrazides of formula IA, which correspond
to acylhydrazides of the formula I, wherein in case R
2 and R
3 together with the carbon atoms (a) and (b) to which they are attached form a six-membered
monocyclic cycle, said six-membered monocyclic cycle is partially or fully halogenated
and/or is substituted by one to three substituents selected from the group as defined
herein. Accordingly, since the acylhydrazides of formula IA represent a preferred
embodiment of the acylhydrazides of formula I, hereinbelow the term "acylhydrazides
of formula I" includes also the "acylhydrazides of formula IA".
[0013] Moreover, the invention relates to processes and intermediates for preparing acylhydrazides
of formula I.
[0014] Further embodiments of the present invention are evident from the claims, the description
and the examples. It is to be understood that the features mentioned above and still
to be illustrated below of the subject matter of the invention can be applied not
only in the combination given in each particular case but also in other combinations,
without leaving the scope of the invention.
[0015] As used herein, the terms "controlling" and "combating" are synonyms.
[0016] As used herein, the terms "undesirable vegetation" and "harmful plants" are synonyms.
[0017] The acylhydrazides of formula I as described herein are capable to form the following
different tautomeric forms (Ia), (Ib) and (Ic):

[0018] All possible tautomeric forms (Ia), (Ib) and (Ic) of the acylhydrazides of formula
I or formula IA are contemplated to be within the scope of the present invention.
Accordingly hereinbelow the term "acylhydrazides of formula I" or "acylhydrazides
of formula IA" includes all tautomeric forms (Ia), (Ib) and (Ic).
[0019] In particular the acylhydrazides of formula I may exist in the tautomeric form (Ia).
[0020] If the acylhydrazides of formula I as described herein are capable of forming geometrical
isomers, for example E/Z isomers, it is possible to use both, the pure isomers and
mixtures thereof, in the compositions according to the invention.
[0021] If the acylhydrazides of formula I as described herein have one or more centers of
chirality and, as a consequence, are present as enantiomers or diastereomers, it is
possible to use both, the pure enantiomers and diastereomers and their mixtures, in
the compositions according to the invention.
[0022] The organic moieties mentioned in the definition of the variables R
1 to R
17, are - like the term halogen - collective terms for individual enumerations of the
individual group members. The term halogen denotes in each case fluorine, chlorine,
bromine or iodine. All hydrocarbon chains, i.e. all alkyl, can be straight-chain or
branched, the prefix C
n-C
m denoting in each case the possible number of carbon atoms in the group.
[0023] Examples of such meanings are:
- C1-C4-alkyl: for example CH3, C2H5, n-propyl, CH(CH3)2, n-butyl, CH(CH3)-C2H5, CH2-CH(CH3)2 and C(CH3)3;
- C1-C6-alkyl and also the C1-C6-alkyl moieties of C1-C6-hydroxyalkyl, C1-C6-alkylthio, C1-C6-hydroxyalkylthio, C1-C6-hydroxyalkylamino, amino-C1-C6-alkylthio, (C1-C6-alkyl)amino-C1-C6-alkylthio, di(C1-C6-alkyl)amino-C1-C6-alkylthio, C1-C6-alkylamino, di(C1-C6-alkyl)amino, (C1-C6-alkyl)aminocarbonyl, di(C1-C6-alkyl)aminocarbonyl, C1-C6-alkylsulfinyl, C1-C6-alkylsulfonyl, C1-C6-hydroxyalkylsulfonyl, C1-C6-alkylsulfonyloxy, (C1-C6-alkyl)aminocarbonyl(C1-C6-alkyl)oxy, di(C1-C6-alkyl)aminocarbonyloxy, C1-C6-alkylsulfonylamino, N(C1-C6-alkylsulfonyl)-N(C1-C6-alkyl)amino, amino-C1-C6-alkylsulfonyl, (C1-C6-alkyl)amino-C1-C6-alkylsulfonyl, di(C1-C6-alkyl)amino-C1-C6-alkylsulfonyl, (C1-C6-alkyl)aminosulfonyl, di(C1-C6-alkyl)aminosulfonyl, C1-C6-alkylcarbonyl, C1-C6-alkylcarbonyloxy, amino-C1-C6-alkyl, (C1-C6-alkyl)amino-C1-C6-alkyl, di(C1-C6-alkyl)amino-C1-C6-alkyl, amino-C1-C6-alkylamino, (C1-C6-alkyl)amino-C1-C6-alkylamino, di(C1-C6-alkyl)amino-C1-C6-alkylamino, C1-C6-alkylsulfonylamino, C1-C6-alkylsulfonyl-(C1-C6-alkyl)amino, (C1-C6-alkyl)aminosulfonylamino, di(C1-C6-alkyl)aminosulfonylamino, formyl(C1-C6-alkyl)amino, (C1-C6-alkyl)carbonylamino, N(C1-C6-alkylcarbonyl)-N(C1-C6-alkyl)amino, (C1-C6-alkyl)aminocarbonylamino, di(C1-C6-alkyl)aminocarbonylamino, (C1-C6-alkyl)aminocarbonyl(C1-C6-alkyl)amino, N(phenyl)-N(C1-C6-alkyl)amino, N-phenylcarbonyl-N(C1-C6-alkyl)amino, C1-C6-alkoxy-C1-C6-alkyl, C1-C6-haloalkoxy-C1-C6-alkyl, (C1-C6-alkyl)amino-C2-C6-alkenyl, di(C1-C6-alkyl)amino-C2-C6-alkenyl, (C1-C6-alkyl)amino-C2-C6-alkynyl, di(C1-C6-alkyl)amino-C2-C6-alkynyl, (C1-C6-alkyl)amino-C1-C6-alkoxy, di(C1-C6-alkyl)amino-C1-C6-alkoxy, C1-C6-alkoxy-C1-C6-alkylthio, C1-C6-haloalkoxy-C1-C6-alkylthio, C1-C6-alkoxy-C1-C6-alkylamino, C1-C6-haloalkoxy-C1-C6-alkylamino, C1-C6-alkoxy-C1-C6-alkylsulfonyl, C1-C6-haloalkoxy-C1-C6-alkylsulfonyl, heterocydyl-C1-C6-alkyl, heterocydyl-C1-C6-alkylthio, heterocydyl-C1-C6-alkylthio, heterocyclyl-C1-C6-alkylamino, heterocydyl-C1-C6-alkylsulfonyl, heterocydyl-[(C1-C6-alkyl)-amino], heterocyclylcarbonyl[(C1-C6-alkyl)amino]: C1-C4-alkyl as mentioned above, and also, for example, n-pentyl, 1-methylbutyl, 2-methylbutyl,
3-methylbutyl, 2,2-dimethylpropyl, 1-ethylpropyl, n-hexyl, 1,1-dimethylpropyl, 1,2-dimethylpropyl,
1-methylpentyl, 2-methylpentyl, 3-methylpentyl, 4-methylpentyl, 1,1-dimethylbutyl,
1,2-dimethylbutyl, 1,3-dimethylbutyl, 2,2-dimethylbutyl, 2,3-dimethylbutyl, 3,3-dimethylbutyl,
1-ethylbutyl, 2-ethylbutyl, 1,1,2-trimethylpropyl, 1,2,2-trimethylpropyl, 1-ethyl-1-methylpropyl
or 1-ethyl-2-methylpropyl, preferably methyl, ethyl, n-propyl, 1-methylethyl, n-butyl,
1,1-dimethylethyl, n-pentyl or n-hexyl;
- C1-C4-haloalkyl: a C1-C4-alkyl radical as mentioned above which is partially or fully substituted by fluorine,
chlorine, bromine and/or iodine, for example, chloromethyl, dichloromethyl, trichloromethyl,
fluoromethyl, difluoromethyl, trifluoromethyl, chlorofluoromethyl, dichlorofluoromethyl,
chlorodifluoromethyl, bromomethyl, iodomethyl, 2-fluoroethyl, 2-chloroethyl, 2-bromoethyl,
2-iodoethyl, 2,2-difluoroethyl, 2,2,2-trifluoroethyl, 2-chloro-2-fluoroethyl, 2-chloro-2,2-difluoroethyl,
2,2-dichloro-2-fluoroethyl, 2,2,2-trichloroethyl, pentafluoroethyl, 2-fluoropropyl,
3-fluoropropyl, 2,2-difluoropropyl, 2,3-difluoropropyl, 2-chloropropyl, 3-chloropropyl,
2,3-dichloropropyl, 2-bromopropyl, 3-bromopropyl, 3,3,3-trifluoropropyl, 3,3,3-trichloropropyl,
2,2,3,3,3-pentafluoropropyl, heptafluoropropyla C1-C3-haloalkyl radical as mentioned above, and also, for example, 1-(fluoromethyl)-2-fluoroethyl,
1-(chloromethyl)-2-chloroethyl, 1-(bromomethyl)-2-bromoethyl, 4-fluorobutyl, 4-chlorobutyl,
4-bromobutyl, nonafluorobutyl, 1,1,2,2,-tetrafluoroethyl and 1-trifluoromethyl-1,2,2,2-tetrafluoroethyl;
- C1-C6-haloalkyl: C1-C4-haloalkyl as mentioned above, and also, for example, 5-fluoropentyl, 5-chloropentyl,
5-bromopentyl, 5-iodopentyl, undecafluoropentyl, 6-fluorohexyl, 6-chlorohexyl, 6-bromohexyl,
6-iodohexyl and dodecafluorohexyl;
- C3-C6-cycloalkyl and also the cycloalkyl moieties of C3-C6-cycloalkylthio, C3-C6-cycloalkoxy, C3-C6-cycloalkylamino and C3-C6-cycloalkylsulfonyl: monocyclic saturated hydrocarbons having 3 to 6 ring members,
such as cyclopropyl, cyclobutyl, cyclopentyl and cyclohexyl;
- C3-C6-alkenyl and also the C3-C6-alkenyl moieties of C3-C6-alkenyloxy, C3-C6-alkenylthio, C3-C6-alkenyamino, C3-C6-alkenylsulfonyl: for example 1-propenyl, 2-propenyl, 1-methylethenyl, 1-butenyl,
2-butenyl, 3-butenyl, 1-methyl-1-propenyl, 2-methyl-1-propenyl, 1-methyl-2-propenyl,
2-methyl-2-propenyl, 1-pentenyl, 2-pentenyl, 3-pentenyl, 4-pentenyl, 1-methyl-1-butenyl,
2-methyl-1-butenyl, 3-methyl-1-butenyl, 1-methyl-2-butenyl, 2-methyl-2-butenyl, 3-methyl-2-butenyl,
1-methyl-3-butenyl, 2-methyl-3-butenyl, 3-methyl-3-butenyl, 1,1-dimethyl-2-propenyl,
1,2-dimethyl-1-propenyl, 1,2-dimethyl-2-propenyl, 1-ethyl-1-propenyl, 1-ethyl-2-propenyl,
1-hexenyl, 2-hexenyl, 3-hexenyl, 4-hexenyl, 5-hexenyl, 1-methyl-1-pentenyl, 2-methyl-1-pentenyl,
3-methyl-1-pentenyl, 4-methyl-1-pentenyl, 1-methyl-2-pentenyl, 2-methyl-2-pentenyl,
3-methyl-2-pentenyl, 4-methyl-2-pentenyl, 1-methyl-3-pentenyl, 2-methyl-3-pentenyl,
3-methyl-3-pentenyl, 4-methyl-3-pentenyl, 1-methyl-4-pentenyl, 2-methyl-4-pentenyl,
3-methyl-4-pentenyl, 4-methyl-4-pentenyl, 1,1-dimethyl-2-butenyl, 1,1-dimethyl-3-butenyl,
1,2-dimethyl-1-butenyl, 1,2-dimethyl-2-butenyl, 1,2-dimethyl-3-butenyl, 1,3-dimethyl-1-butenyl,
1,3-dimethyl-2-butenyl, 1,3-dimethyl-3-butenyl, 2,2-dimethyl-3-butenyl, 2,3-dimethyl-1-butenyl,
2,3-dimethyl-2-butenyl, 2,3-dimethyl-3-butenyl, 3,3-dimethyl-1-butenyl, 3,3-dimethyl-2-butenyl,
1-ethyl-1-butenyl, 1-ethyl-2-butenyl, 1-ethyl-3-butenyl, 2-ethyl-1-butenyl, 2-ethyl-2-butenyl,
2-ethyl-3-butenyl, 1,1,2-trimethyl-2-propenyl, 1-ethyl-1-methyl-2-propenyl, 1-ethyl-2-methyl-1-propenyl
and 1-ethyl-2-methyl-2-propenyl;
- C2-C6-alkenyl and also the C2-C6-alkenyl moieties of C2-C6-hydroxyalkenyl, C2-C6-haloalkenyl, amino-C2-C6-alkenyl, C1-C6-alkoxy-C2-C6-alkenyl, C1-C6-haloalkoxy-C2-C6-alkenyl, (C1-C6-alkyl)amino-C2-C6-alkenyl, di(C1-C6-alkyl)amino-C2-C6-alkenyl, heterocyclyl-C2-C6-alkenyl: C3-C6-alkenyl as mentioned above, and also ethenyl;
- C2-C6-haloalkenyl: a C3-C6-alkenyl radical as mentioned above which is partially or fully substituted by fluorine,
chlorine, bromine and/or iodine, for example 2-chlorovinyl, 2-chloroprop-2-en-1-yl,
3-chloroprop-2-en-1-yl, 2,3-dichloroprop-2-en-1-yl, 3,3-dichloroprop-2-en-1-yl, 2,3,3-trichloro-2-en-1-yl,
2,3-dichlorobut-2-en-1-yl, 2-bromovinyl, 2-bromoprop-2-en-1-yl, 3-bromoprop-2-en-1-yl,
2,3-dibromoprop-2-en-1-yl, 3,3-dibromoprop-2-en-1-yl, 2,3,3-tribromo-2-en-1-yl or
2,3-dibromobut-2-en-1-yl;
- C3-C6-alkynyl and also the C3-C6-alkenyl moieties of C3-C6-alkynyloxy, C3-C6-alkynylthio, C3-C6-alkynyamino, C3-C6-alkynylsulfonyl: for example 1-propynyl, 2-propynyl, 1-butynyl, 2-butynyl, 3-butynyl,
1-methyl-2-propynyl, 1-pentynyl, 2-pentynyl, 3-pentynyl, 4-pentynyl, 1-methyl-2-butynyl,
1-methyl-3-butynyl, 2-methyl-3-butynyl, 3-methyl-1-butynyl, 1,1-dimethyl-2-propynyl,
1-ethyl-2-propynyl, 1-hexynyl, 2-hexynyl, 3-hexynyl, 4-hexynyl, 5-hexynyl, 1-methyl-2-pentynyl,
1-methyl-3-pentynyl, 1-methyl-4-pentynyl, 2-methyl-3-pentynyl, 2-methyl-4-pentynyl,
3-methyl-1-pentynyl, 3-methyl-4-pentynyl, 4-methyl-1-pentynyl, 4-methyl-2-pentynyl,
1,1-dimethyl-2-butynyl, 1,1-dimethyl-3-butynyl, 1,2-dimethyl-3-butynyl, 2,2-dimethyl-3-butynyl,
3,3-dimethyl-1-butynyl, 1-ethyl-2-butynyl, 1-ethyl-3-butynyl, 2-ethyl-3-butynyl and
1-ethyl-1-methyl-2-propynyl;
- C2-C6-alkynyl and also the C2-C6-alkynyl moieties of C2-C6-haloalkynyl, amino-C2-C6-alkynyl, C1-C6-hydroxyalkynyl, C1-C6-alkoxy-C2-C6-alkynyl, C1-C6-haloalkoxy-C2-C6-alkynyl, (C1-C6-alkyl)amino-C2-C6-alkynyl, di(C1-C6-alkyl)amino-C2-C6-alkynyl, heterocyclyl-C2-C6-alkynyl: C3-C6-alkynyl as mentioned above, and also ethynyl;
- C3-C6-haloalkynyl: a C3-C6-alkynyl radical as mentioned above which is partially or fully substituted by fluorine,
chlorine, bromine and/or iodine, for example 1,1-difluoroprop-2-yn-1-yl, 3-chloroprop-2-yn-1-yl,
3-bromoprop-2-yn-1-yl, 3-iodoprop-2-yn-1-yl, 4-fluorobut-2-yn-1-yl, 4-chlorobut-2-yn-1-yl,
1,1-difluorobut-2-yn-1-yl, 4-iodobut-3-yn-1-yl, 5-fluoropent-3-yn-1-yl, 5-iodopent-4-yn-1-yl,
6-fluorohex-4-yn-1-yl or 6-iodohex-5-yn-1-yl;
- C1-C4-alkoxy: for example methoxy, ethoxy, propoxy, 1-methylethoxy butoxy, 1-methylpropoxy,
2-methylpropoxy and 1,1-dimethylethoxy;
- C1-C6-alkoxy and also the C1-C6-alkoxy moieties of C1-C6-hydroxyalkoxy, C1-C6-alkoxycarbonyl, C1-C6-alkoxy-C1-C6-alkoxy, amino-C1-C6-alkoxy, C1-C6-alkoxy-C1-C6-alkyl, C1-C6-alkoxy-C2-C6-alkenyl, C1-C6-alkoxy-C2-C6-alkynyl, C1-C6-haloalkoxy-C1-C6-alkoxy, (C1-C6-alkyl)amino-C1-C6-alkoxy, di(C1-C6-alkyl)amino-C1-C6-alkoxy, C1-C6-alkoxy-C1-C6-alkylthio, C1-C6-alkoxy-C1-C6-alkylamino, C1-C6-alkoxy-C1-C6-alkylsulfonyl, heterocyclyl-C1-C6-alkoxy: C1-C4-alkoxy as mentioned above, and also, for example, pentoxy, 1-methylbutoxy, 2-methylbutoxy,
3-methoxylbutoxy, 1,1-dimethylpropoxy, 1,2-dimethylpropoxy, 2,2-dimethylpropoxy, 1-ethylpropoxy,
hexoxy, 1-methylpentoxy, 2-methylpentoxy, 3-methylpentoxy, 4-methylpentoxy, 1,1-dimethylbutoxy,
1,2-dimethylbutoxy, 1,3-dimethylbutoxy, 2,2-dimethylbutoxy, 2,3-dimethylbutoxy, 3,3-dimethylbutoxy,
1-ethylbutoxy, 2-ethylbutoxy, 1,1,2-trimethylpropoxy, 1,2,2-trimethylpropoxy, 1-ethyl-1-methylpropoxy
and 1-ethyl-2-methylpropoxy;
- C1-C4-haloalkoxy: a C1-C4-alkoxy radical as mentioned above which is partially or fully substituted by fluorine,
chlorine, bromine and/or iodine, i.e., for example, fluoromethoxy, difluoromethoxy,
trifluoromethoxy, chlorodifluoromethoxy, bromodifluoromethoxy, 2-fluoroethoxy, 2-chloroethoxy,
2-bromomethoxy, 2-iodoethoxy, 2,2-difluoroethoxy, 2,2,2-trifluoroethoxy, 2-chloro-2-fluoroethoxy,
2-chloro-2,2-difluoroethoxy, 2,2-dichloro-2-fluoroethoxy, 2,2,2-trichloroethoxy, pentafluoroethoxy,
2-fluoropropoxy, 3-fluoropropoxy, 2-chloropropoxy, 3-chloropropoxy, 2-bromopropoxy,
3-bromopropoxy, 2,2-difluoropropoxy, 2,3-difluoropropoxy, 2,3-dichloropropoxy, 3,3,3-trifluoropropoxy,
3,3,3-trichloropropoxy, 2,2,3,3,3-pentafluoropropoxy, heptafluoropropoxy, 1-(fluoromethyl)-2-fluoroethoxy,
1-(chloromethyl)-2-chloroethoxy, 1-(bromomethyl)-2-bromoethoxy, 4-fluorobutoxy, 4-chlorobutoxy,
4-bromobutoxy and nonafluorobutoxy;
- C1-C6-haloalkoxy and the C1-C6-haloalkoxy moieties of C1-C6-haloalkoxy-C1-C6-alkyl, C1-C6-haloalkoxy-C2-C6-alkenyl, C1-C6-haloalkoxy-C2-C6-alkynyl, C1-C6-haloalkoxy-C1-C6-alkoxy, C1-C6-haloalkoxy-C1-C6-alkylthio, C1-C6-haloalkoxy-C1-C6-alkylamino, C1-C6-haloalkoxy-C1-C6-alkylsulfonyl: C1-C4-haloalkoxy as mentioned above, and also, for example, 5-fluoropentoxy, 5-chloropentoxy,
5-bromopentoxy, 5-iodopentoxy, undecafluoropentoxy, 6-fluorohexoxy, 6-chlorohexoxy,
6-bromohexoxy, 6-iodohexoxy and dodecafluorohexoxy;
- heterocyclyl and the heterocyclyl moieties of heterocyclyl-C1-C6-alkyl, heterocyclyl-C2-C6-alkenyl, heterocyclyl-C2-C6-alkynyl, heterocyclyl-C1-C6-alkoxy, heterocyclyl-C1-C6-alkylthio, heterocydyl-C1-C6-alkylamino, heterocydyl-C1-C6-alkylsulfonyl, heterocyclyloxy, heterocyclylthio, heterocyclylsulfinyl, heterocyclylsulfonyl,
heterocyclylsulfonyloxy, heterocyclylcarbonyl, heterocyclylcarbonyloxy, heterocyclylamino,
heterocyclyl-[(C1-C6-alkyl)amino], heterocyclylcarbonylamino, heterocydylcarbonyl[(C1-C6-alkyl)-amino]: saturated, partially unsaturated or aromatic 3- to 6-membered heterocycle
which, in addition to carbon atoms, comprises one to three nitrogen atoms, one or
two nitrogen atoms and one sulfur atom, one nitrogen atom and one oxygen atom, one
oxygen atoms, one or two sulfur atoms, one oxygen atom, or one sulfur atom, for example
3- and 4-membered rings like 2-oxiranyl, 2-oxetanyl, 3-oxetanyl, 2-aziridinyl, 2-thiiranyl,
2-thiethanyl, 3-thiethanyl, 1-azetidinyl, 2-azetidinyl, 1-azetinyl, 2-azetinyl; 5-membered
saturated rings like 2-tetrahydrofuranyl, 3-tetrahydrofuranyl, 2-tetrahydrothienyl,
3-tetrahydrothienyl, 1-pyrrolidinyl, 2-pyrrolidinyl, 3-pyrrolidinyl, 3-isoxazolidinyl,
4-isoxazolidinyl, 5-isoxazolidinyl, 2-isothiazolidinyl, 3-isothiazolidinyl, 4-isothiazolidinyl,
5-isothiazolidinyl, 1-pyrazolidinyl, 3-pyrazolidinyl, 4-pyrazolidinyl, 5-pyrazolidinyl,
2-oxazolidinyl, 4-oxazolidinyl, 5-oxazolidinyl, 2-thiazolidinyl, 4-thiazolidinyl,
5-thiazolidinyl, 1-imidazolidinyl, 2-imidazolidinyl, 4-imidazolidinyl, 3-oxazolidinyl,
1,2,4-oxadiazolidin-3-yl, 1,2,4-oxadiazolidin-5-yl, 3-thiazolidinyl, 1,2,4-thiadiazolidin-3-yl,
1,2,4-thiadiazolidin-5-yl, 1,2,4-triazolidin-3-yl, 1,2,4-oxadiazolidin-2-yl, 1,2,4-oxadiazolidin-4-yl,
1,3,4-oxadiazolidin-2-yl, 1,2,4-thiadiazolidin-2-yl, 1,2,4-thiadiazolidin-4-yl, 1,3,4-thiadiazolidin-2-yl,
1,2,4-triazolidin-1-yl, 1,3,4-triazolidin-2-yl; 5-membered partially unsaturated rings
like 2,3-dihydrofur-2-yl, 2,3-dihydrofur-3-yl, 2,4-dihydrofur-2-yl, 2,4-dihydrofur-3-yl,
dioxolan-2-yl, 1,3-dioxol-2-yl, 2,3-dihydrothien-2-yl, 2,3-dihydrothien-3-yl, 2,4-dihydrothien-2-yl,
2,4-dihydrothien-3-yl, 4,5-dihydropyrrol-1-yl, 4,5-dihydropyrrol-2-yl, 4,5-dihydropyrrol-3-yl,
2,5-dihydropyrrol-1-yl, 2,5-dihydropyrrol-2-yl, 2,5-dihydropyrrol-3-yl, 2,3-dihydroisoxazol-1-yl,
2,3-dihydroisoxazol-3-yl, 2,3-dihydroisoxazol-4-yl, 2,3-dihydroisoxazol-5-yl, 2,5-dihydroisoxazol-3-yl,
2,5-dihydroisoxazol-4-yl, 2,5-dihydroisoxazol-5-yl, 4,5-dihydroisoxazol-2-yl, 4,5-dihydroisoxazol-3-yl,
4,5-dihydroisoxazol-4-yl, 4,5-dihydroisoxazol-5-yl, 2,3-dihydroisothiazol-1-yl, 2,3-dihydroisothiazol-3-yl,
2,3-dihydroisothiazol-4-yl, 2,3-dihydroisothiazol-5-yl, 2,5-dihydroisothiazol-3-yl,
2,5-dihydroisothiazol-4-yl, 2,5-dihydroisothiazol-5-yl, 4,5-dihydroisothiazol-1-yl,
4,5-dihydroisothiazol-3-yl, 4,5-dihydroisothiazol-4-yl, 4,5-dihydroisothiazol-5-yl,
2,3-dihydropyrazol-1-yl, 2,3-dihydropyrazol-2-yl, 2,3-dihydropyrazol-3-yl, 2,3-dihydropyrazol-4-yl,
2,3-dihydropyrazol-5-yl, 3,4-dihydropyrazol-1-yl, 3,4-dihydropyrazol-3-yl, 3,4-dihydropyrazol-4-yl,
3,4-dihydropyrazol-5-yl, 4,5-dihydropyrazol-1-yl, 4,5-dihydropyrazol-3-yl, 4,5-dihydropyrazol-4-yl,
4,5-dihydropyrazol-5-yl, 2,3-dihydroimidazol-1-yl, 2,3-dihydroimidazol-2-yl, 2,3-dihydroimidazol-3-yl
,2,3-dihydroimidazol-4-yl, 2,3-dihydroimidazol-5-yl, 4,5-dihydroimidazol-1-yl, 4,5-dihydroimidazol-2-yl,
4,5-dihydroimidazol-4-yl, 4,5-dihydroimidazol-5-yl, 2,5-dihydroimidazol-1-yl, 2,5-dihydroimidazol-2-yl,
2,5-dihydroimidazol-4-yl, 2,5-dihydroimidazol-5-yl, 2,3-dihydrooxazol-2-yl, 2,3-dihydrooxazol-3-yl,
2,3-dihydrooxazol-4-yl, 2,3-dihydrooxazol-5-yl, 3,4-dihydrooxazol-2-yl, 3,4-dihydrooxazol-3-yl,
3,4-dihydrooxazol-4-yl, 3,4-dihydrooxazol-5-yl, 2,3-dihydrothiazol-2-yl, 2,3-dihydrothiazol-3-yl,
2,3-dihydrothiazol-4-yl, 2,3-dihydrothiazol-5-yl, 3,4-dihydrothiazol-2-yl, 3,4-dihydrothiazol-3-yl,
3,4-dihydrothiazol-4-yl, 3,4-dihydrothiazol-5-yl, 3,4-dihydrothiazol-2-yl, 3,4-dihydrothiazol-3-yl,
3,4-dihydrothiazol-4-yl; 5-membered aromatic rings like furyl (for example 2-furyl,
3-furyl), thienyl (for example 2-thienyl, 3-thienyl), pyrrolyl (for example pyrrol-2-yl,
pyrrol-3-yl), pyrazolyl (for example pyrazol-3-yl, pyrazol-4-yl), isoxazolyl (for
example isoxazol-3-yl, isoxazol-4-yl, isoxazol-5-yl), isothiazolyl (for example isothiazol-3-yl,
isothiazol-4-yl, isothiazol-5-yl), imidazolyl (for example imidazol-2-yl, imidazol-4-yl),
oxazolyl (for example oxazol-2-yl, oxazol-4-yl, oxazol-5-yl), thiazolyl (for example
thiazol-2-yl, thiazol-4-yl, thiazol-5-yl), oxadiazolyl (for example 1,2,3-oxadiazol-4-yl,
1,2,3-oxadiazol-5-yl, 1,2,4-oxadiazol-3-yl, 1,2,4,-oxadiazol-5-yl, 1,3,4-oxadiazol-2-yl),
thiadiazolyl (for example 1,2,3-thiadiazol-4-yl, 1,2,3-thiadiazol-5-yl, 1,2,4-thiadiazol-3-yl,
1,2,4-thiadiazol-5-yl, 1,3,4-thiadiazolyl-2-yl), triazolyl (for example 1,2,3-triazol-4-yl,
1,2,4-triazol-3-yl); 6-membered saturated rings like 1-piperidinyl, 2-piperidinyl,
3-piperidinyl, 4-piperidinyl, 1,3-dioxan-5-yl, 1,4-dioxanyl, 1,3-dithian-5-yl, 1,3-dithianyl,
1,3-oxathian-5-yl, 1,4-oxathianyl, 2-tetrahydropyranyl, 3-tetrahydopyranyl, 4-tetrahydropyranyl,
2-tetrahydrothiopyranyl, 3-tetrahydrothiopyranyl,4-tetrahydrothiopyranyl, 1-hexahydropyridazinyl,
3-hexahydropyridazinyl, 4-hexahydropyridazinyl, 1-hexahydropyrimidinyl, 2-hexahydropyrimidinyl,
4-hexahydropyrimidinyl, 5-hexahydropyrimidinyl, 1-piperazinyl, 2-piperazinyl, 1,3,5-hexahydrotriazin-1-yl,
1,3,5-hexahydrotriazin-2-yl, 1,2,4-hexahydrotriazin-1-yl, 1,2,4-hexahydrotriazin-3-yl,
tetrahydro-1,3-oxazin-1-yl, tetrahydro-1,3-oxazin-2-yl, tetrahydro-1,3-oxazin-6-yl,
1-morpholinyl, 2-morpholinyl, 3-morpholinyl; 6-membered partially unsaturated rings
like 2H-pyran-2-yl, 2H-pyran-3-yl, 2H-pyran-4-yl, 2H-pyran-5-yl, 2H-pyran-6-yl, 2H-thiopyran-2-yl,
2H-thiopyran-3-yl, 2H-thiopyran-4-yl, 2H-thiopyran-5-yl, 2H-thiopyran-6-yl, 5,6-dihydro-4H-1,3-oxazin-2-yl;
6-membered aromatic rings like pyridyl (for example pyridin-2-yl, pyridin-3-yl, pyridin-4-yl),
pyrazinyl (for example pyridazin-3-yl, pyridazin-4-yl), pyrimidinyl (for example pyrimidin-2-yl,
pyrimidin-4-yl, pyrimidin-5-yl), pyrazin-2-yl, triazinyl (for example 1,3,5-triazin-2-yl,
1,2,4-triazin-3-yl, 1,2,4-triazin-5-yl, 1,2,4-triazin-6-yl); and also bicycles such
as the benzo-fused derivatives of the abovementioned monocycles, for example quinolinyl,
isoquinolinyl, indolyl, benzothienyl, benzofuranyl, benzoxazolyl, benzothiazolyl,
benzisothiazolyl, benzimidazolyl, benzopyrazolyl, benzothiadiazolyl, benzotriazolyl;
- 5- or 6-membered monocyclic or eight- to ten-membered bicyclic heteroaryl:
aromatic 5- to 10-membered mono- or bicyclic heterocycle which, in addition to carbon
atoms comprises one to three nitrogen atoms, one or two nitrogen atoms and one sulfur
atom, one nitrogen and one oxygen atom, one oxygen atom, or one sulfur atom as ring
members, for example monocycles, such as 5-membered aromatic rings as mentioned above;
6-membered aromatic rings as mentioned above; and also bicycles such as the benzo-fused
derivatives of the above-mentioned monocycles, for example quinolinyl, isoquinolinyl,
indolyl, benzothienyl, benzofuranyl, benzoxazolyl, benzothiazolyl, benzisothiazolyl,
benzimidazolyl, benzopyrazolyl, benzothiadiazolyl, benzotriazolyl;
- five- or six-membered heterocyclyl: saturated, partially unsaturated or aromatic 5-or
6-membered heterocycle which, in addition to carbon atoms, comprises one or two nitrogen
atoms, one nitrogen and one oxygen atom or one nitrogen and one sulfur atom, for example
5-membered saturated rings as mentioned above, 5-membered partially unsaturated rings
as mentioned above, 5-membered aromatic rings as mentioned above, 6-membered saturated
rings as mentioned above, 6-membered partially unsaturated rings as mentioned above,
6-membered aromatic rings as mentioned above;
- five- or six-membered monocyclic or eight- to ten-membered bicyclic cyclus: partially
unsaturated or aromatic 5- to 10-membered mono- or bicyclic heterocycle, which, in
addition to carbon atoms, may comprise one to three nitrogen atoms, one or two nitrogen
atoms and one sulfur atom, one nitrogen and one oxygen atom, one or two sulfur atoms,
or one or two oxygen atoms, for example monocycles like 5-membered saturated rings
as mentioned above and cyclopentyl, 5-membered partially unsaturated rings as mentioned
above and *cyclopentenyl, 5-membered aromatic rings as mentioned above, 6-membered
saturated rings as mentioned above and cyclohexyl, 6-membered partially unsaturated
rings as mentioned above and cyclohexenyl, 6-membered aromatic rings as mentioned
above and phenyl, and also bicycles such as the benzo-fused derivatives of the abovementioned
monocycles, for example naphtyl, anthracenyl, quinolinyl, isoquinolinyl, indolyl,
benzothienyl, benzofuranyl, benzoxazolyl, benzothiazolyl, benzisothiazolyl, benzimidazolyl,
benzopyrazolyl, benzothiadiazolyl, benzotriazolyl.
[0024] The preferred embodiments of the invention mentioned herein below have to be understood
as being preferred either independently from each other or in combination with one
another.
[0025] According to a preferred embodiment of the invention preference is also given to
those acylhydrazides of formula I wherein the variables, either independently of one
another or in combination with one another, have the following meanings:
R1 preferably is a five- or six-membered monocyclic or eight- to ten-membered bicyclic
heteroaryl having one to three nitrogen atoms, or one nitrogen and one oxygen atom,
which may be partially or fully halogenated and/or may be substituted by
one substituent selected from the group consisting of C1-C6-alkyl, C3-C6-cycloalkyl, C1-C6-haloalkyl, C2-C6-alkenyl, C2-C6-alkynyl, C1-C6-alkoxy, C3-C6-cycloalkoxy, C1-C6-haloalkoxy, C3-C6-alkenyloxy, C3-C6-alkynyloxy, C1-C6-alkylthio, C1-C6-alkylsulfonyl, amino, C1-C6-alkylamino, di(C1-C6)alkylamino, C1-C6-alkylsulfonylamino, N(C1-C6-alkylsulfonyl)-N(C1-C6-alkyl)amino, five- or six-membered heterocyclyl having one or two nitrogen atoms,
one nitrogen and one oxygen atom or one nitrogen and one sulfur atom, or phenyl, which
itself may be partially or fully halogenated
and/or may be substituted one to three substituents selected from of the group consisting
of C1-C6-alkyl, C1-C6-haloalkyl and C1-C6-alkoxy;
more preferred is a six-membered monocyclic heteroaryl having one to three nitrogen
atoms, which which may be partially or fully halogenated and/or may be substituted
by one substituent selected from the group consisting of C1-C6-alkyl, C3-C6-cycloalkyl, C1-C6-haloalkyl, C2-C6-alkenyl, C2-C6-alkynyl, C1-C6-alkoxy, C3-C6-cycloalkoxy, C1-C6-haloalkoxy, C3-C6-alkenyloxy, C3-C6-alkynyloxy, di(C1-C6)alkylamino, five- or six-membered heterocyclyl having one or two nitrogen atoms or
one nitrogen and one oxygen atom, or phenyl, which itself may be partially or fully
halogenated and/or may be substituted one to three substituents selected from of the
group consisting of C1-C6-alkyl, C1-C6-haloalkyl and C1-C6-alkoxy;
particularly preferred is pyridyl;
especially preferred is 2-pyridyl or 4-pyridyl;
most preferred is 2-pyridyl;
wherein each of the four pyridyl moieties mentioned before preferably may be partially
or fully halogenated and/or may be substituted by one substituent selected from the
group consisting of C1-C6-alkyl, C3-C6-cycloalkyl, C1-C6-haloalkyl, C2-C6-alkenyl, C2-C6-alkynyl, C1-C6-alkoxy, C3-C6-cycloalkoxy, C1-C6-haloalkoxy, C3-C6-alkenyloxy, C3-C6-alkynyloxy, di(C1-C6)alkylamino, five- or six-membered heterocyclyl having one or two nitrogen atoms or
one nitrogen and one oxygen atom, or phenyl, which itself may be partially or fully
halogenated and/or may be substituted one to three substituents selected from of the
group consisting of C1-C6-alkyl, C1-C6-haloalkyl and C1-C6-alkoxy;
more preferred is partially halogenated and/or is substituted by one substituent selected
from the group consisting of C1-C6-alkyl, C1-C6-haloalkyl, C1-C6-alkoxy, di(C1-C6)alkylamino or phenyl, which itself may be partially or fully halogenated and/or may
be substituted one to three substituents selected from of the group consisting of
C1-C6-alkyl, C1-C6-haloalkyl and C1-C6-alkoxy;
also particularly preferred is selected from the group consisting of A1, A2 and A3:

wherein R5, R6, R7, R8 and R9 are as defined below:
R5 hydrogen;
R6 hydrogen, halogen or C1-C6-alkyl, preferably hydrogen;
R7 hydrogen, halogen, C1-C6-alkyl, C1-C6-alkoxy, di(C1-C6)alkylamino or phenyl; preferably hydrogen, C1-C6-alkyl, C1-C6-alkoxy or di(C1-C6)alkylamino;
R8 hydrogen or C1-C6-alkyl;
R9 hydrogen;
R
2 and R
3 preferably together with the carbon atoms (a) and (b) to which they are attached
form a five- or six-membered monocyclic or eight- to ten-membered bicyclic cyclus,
which is partially unsaturated or aromatic, which may contain one to three nitrogen
atoms, one or two nitrogen atoms and one sulfur atom, one nitrogen and one oxygen
atom, one or two sulfur atoms, or one or two oxygen atoms; and
which may be partially or fully halogenated and/or may be substituted by one to three
substituents selected from the group consisting of C
1-C
6-alkyl, C
3-C
6-cycloalkyl, C
1-C
6-haloalkyl, C
1-C
6-alkoxy-C
1-C
6-alkyl, C
1-C
6-haloalkoxy-C
1-C
6-alkyl, (C
1-C
6-alkyl)amino-C
1-C
6-alkyl, di(C
1-C
6-alkyl)amino-C
1-C
6-alkyl, C
2-C
6-alkenyl, C
2-C
6-haloalkenyl, C
1-C
6-alkoxy-C
2-C
6-alkenyl, C
1-C
6-haloalkoxy-C
2-C
6-alkenyl, (C
1-C
6-alkyl)-amino-C
2-C
6-alkenyl, di(C
1-C
6-alkyl)amino-C
2-C
6-alkenyl, C
2-C
6-alkynyl, C
2-C
6-haloalkynyl, C
1-C
6-alkoxy-C
2-C
6-alkynyl, C
1-C
6-haloalkoxy-C
2-C
6-alkynyl, (C
1-C
6-alkyl)amino-C
2-C
6-alkynyl, di(C
1-C
6-alkyl)amino-C
2-C
6-alkynyl, C
1-C
6-alkylcarbonyl, hydroxycarbonyl, C
1-C
6-alkoxycarbonyl, C
1-C
6-alkoxyC
3-C
6-cycloalkoxy, C
3-C
6-alkenyloxy, C
3-C
6-alkynyloxy, C
1-C
6-alkylcarbonyloxy, C
1-C
6-alkylsulfonyloxy, C
1-C
6-alkylthio, C
1-C
6-alkylsulfonylamino, C
1-C
6-alkylsulfinyl, C
1-C
6-alkylsulfonyl, aminosulfonyl, (C
1-C
6-alkyl)aminosulfonyl, di(C
1-C
6-alkyl)-aminosulfonyl, phenyl, phenyloxy, phenylthio, phenylsulfonyl, phenylsulfonyloxy,
phenylamino, N(phenyl)-N(C
1-C
6-alkyl)amino,
wherein each of the phenyl groups may be partially halogenated and/or may carry one
substituents selected from the group consisting of C
1-C
6-alkyl, C
1-C
6-haloalkyl, C
1-C
6-alkoxy;
heterocyclyl, heterocyclyl-C
1-C
6-alkyl, heterocyclyl-C
2-C
6-alkenyl, heterocyclyl-C
2-C
6-alkynyl, heterocyclyloxy, heterocyclylthio, heterocyclyl sulfinyl, each of the heterocyclyl
groups being three- to seven-membered and having one to three nitrogen atoms, one
nitrogen atom and one sulfur atom, or one nitrogen atom and one oxygen atom,
wherein each of the heterocyclyl groups may be partially halogenated and/or may be
substituted with one to three substituents selected from the group consisting of C
1-C
6-alkyl, C
1-C
6-haloalkyl, hydroxy, C
1-C
6-alkoxy, C
1-C
6-alkylcarbonyloxy;
more preferred together with the carbon atoms (a) and (b) to which they are attached
form a five- or six-membered monocyclic or eight- to ten-membered bicyclic cyclus,
which is partially unsaturated or aromatic, which may contain one to three nitrogen
atoms, one or two nitrogen atoms and one sulfur atom, one nitrogen and one oxygen
atom, one or two sulfur atoms, or one or two oxygen atoms; and
which may be partially or fully halogenated and/or may be substituted by one to three
substituents selected from the group consisting of C
1-C
6-alkyl, C
3-C
6-cycloalkyl, C
1-C
6-haloalkyl, C
1-C
6-alkoxy-C
1-C
6-alkyl, C
1-C
6-haloalkoxy-C
1-C
6-alkyl, (C
1-C
6-alkyl)amino-C
1-C
6-alkyl, di(C
1-C
6-alkyl)amino-C
1-C
6-alkyl, C
2-C
6-alkenyl, C
2-C
6-haloalkenyl, C
1-C
6-alkoxy-C
2-C
6-alkenyl, C
1-C
6-haloalkoxy-C
2-C
6-alkenyl, (C
1-C
6-alkyl)-amino-C
2-C
6-alkenyl, di(C
1-C
6-alkyl)amino-C
2-C
6-alkenyl, C
2-C
6-alkynyl, C
2-C
6-haloalkynyl, C
1-C
6-alkoxy-C
2-C
6-alkynyl, C
1-C
6-haloalkoxy-C
2-C
6-alkynyl, (C
1-C
6-alkyl)amino-C
2-C
6-alkynyl, di(C
1-C
6-alkyl)amino-C
2-C
6-alkynyl, C
1-C
6-alkylcarbonyl, C
1-C
6-alkoxyC
3-C
6-cycloalkoxy, C
3-C
6-alkenyloxy, C
3-C
6-alkynyloxy, C
1-C
6-alkylcarbonyloxy, C
1-C
6-alkylthio, C
1-C
6-alkylsulfonyl, aminosulfonyl, (C
1-C
6-alkyl)aminosulfonyl, di(C
1-C
6-alkyl)aminosulfonyl, phenyl, phenyloxy, phenylthio,
wherein each of the phenyl groups may be partially halogenated and/or may carry one
substituents selected from the group consisting of C
1-C
6-alkyl, C
1-C
6-haloalkyl, C
1-C
6-alkoxy; heterocyclyl-C
1-C
6-alkyl, heterocyclyl-C
2-C
6-alkenyl, heterocyclyl-C
2-C
6-alkynyl, heterocyclyloxy, heterocyclylthio, each of the heterocyclyl groups being
three- to seven-membered and having one to three nitrogen atoms, one nitrogen atom
and one sulfur atom, or one nitrogen atom and one oxygen atom, wherein each of the
heterocyclyl groups may be partially halogenated and/or may be substituted with one
to three substituents selected from the group consisting of C
1-C
6-alkyl, C
1-C
6-haloalkyl, hydroxy, C
1-C
6-alkoxy, C
1-C
6-alkylcarbonyloxy; particularly preferred together with the carbon atoms (a) and (b)
to which they are attached form six-membered monocyclic aromatic or ten-membered bicyclic
aromatic cyclus,
which may be partially or fully halogenated and/or may be substituted by one to three
substituents selected from the group consisting of C
1-C
6-alkyl, C
3-C
6-cycloalkyl, C
1-C
6-haloalkyl, C
1-C
6-alkoxy-C
1-C
6-alkyl, C
1-C
6-haloalkoxy-C
1-C
6-alkyl, (C
1-C
6-alkyl)amino-C
1-C
6-alkyl, di(C
1-C
6-alkyl)amino-C
1-C
6-alkyl, C
2-C
6-alkenyl, C
2-C
6-haloalkenyl, C
1-C
6-alkoxy-C
2-C
6-alkenyl, C
1-C
6-haloalkoxy-C
2-C
6-alkenyl, (C
1-C
6-alkyl)-amino-C
2-C
6-alkenyl, di(C
1-C
6-alkyl)amino-C
2-C
6-alkenyl, C
2-C
6-alkynyl, C
2-C
6-haloalkynyl, C
1-C
6-alkoxy-C
2-C
6-alkynyl, C
1-C
6-haloalkoxy-C
2-C
6-alkynyl, (C
1-C
6-alkyl)amino-C
2-C
6-alkynyl, di(C
1-C
6-alkyl)amino-C
2-C
6-alkynyl, C
1-C
6-alkylcarbonyl, C
1-C
6-alkoxyC
3-C
6-cydoalkoxy, C
3-C
6-alkenyloxy, C
3-C
6-alkynyloxy, C
1-C
6-alkylcarbonyloxy, C
1-C
6-alkylthio, C
1-C
6-alkylsulfonyl, aminosulfonyl, (C
1-C
6-alkyl)aminosulfonyl, di(C
1-C
6-alkyl)aminosulfonyl, phenyl, phenyloxy, phenylthio,
wherein each of the phenyl groups may be partially halogenated and/or may carry one
substituents selected from the group consisting of C
1-C
6-alkyl, C
1-C
6-haloalkyl, C
1-C
6-alkoxy; heterocydyl-C
1-C
6-alkyl, heterocyclyl-C
2-C
6-alkenyl, heterocyclyl-C
2-C
6-alkynyl, heterocyclyloxy, heterocyclylthio, each of the heterocyclyl groups being
three- to seven-membered and having one to three nitrogen atoms, one nitrogen atom
and one sulfur atom, or one nitrogen atom and one oxygen atom, wherein each of the
heterocyclyl groups may be partially halogenated and/or may be substituted with one
to three substituents selected from the group consisting of C
1-C
6-alkyl, C
1-C
6-haloalkyl, hydroxy, C
1-C
6-alkoxy, C
1-C
6-alkylcarbonyloxy
especially preferred together with the carbon atoms (a) and (b) to which they are
attached form a cycle selected from the group consisting of B1, B2, B3 and B4

wherein
R
10 is hydrogen, halogen, nitro, C
1-C
6-alkyl, C
1-C
6-alkoxy, C
1-C
6-haloalkoxy, C
1-C
6-alkylthio, di(C
1-C
6-alkyl)amino-C
1-C
6-alkylthio, di(C
1-C
6-alkyl)aminosulfonyl, phenyl, phenyloxy or phenylthio, wherein each of the phenyl
groups may be partially or fully halogenated, preferably may be substituted by one
halogen atom, more preferably is substituted by one halogen atom;
R
11 is hydrogen or halogen, preferably hydrogen or fluorine, more preferably hydrogen;
is also preferably halogen, more preferably fluorine;
R
12 is hydrogen or halogen, preferably hydrogen or fluorine, more preferably hydrogen;
is also preferably halogen, more preferably fluorine;
R
13 is hydrogen or halogen, preferably hydrogen or fluorine, more preferably hydrogen,
is also preferably halogen; more preferably fluorine;
R
14 is hydrogen or halogen, preferably hydrogen or fluorine, more preferably hydrogen;
is also preferably halogen, more preferably fluorine
R
15 is hydrogen or halogen, preferably hydrogen or fluorine, more preferably hydrogen;
is also preferably halogen, more preferably fluorine
R
16 is hydrogen or halogen, preferably hydrogen or fluorine, more preferably hydrogen;
is also preferably halogen, more preferably fluorine
R
17 is hydrogen or halogen, preferably hydrogen or fluorine, more preferably hydrogen;
is also preferably halogen, more preferably fluorine
R
4 preferably is C
1-C
6-alkylcarbonyl, also preferably is hydrogen.
[0026] According to another preferred embodiment of the invention preference is given to
the acylhydrazides of formula IA, which correspond to acylhydrazides of the formula
I, wherein in case R
2 and R
3 together with the carbon atoms (a) and (b) to which they are attached form a six-membered
monocyclic cycle, preferably the cycle B1, said six-membered monocyclic cycle is partially
or fully halogenated and/or is substituted by one to three substituents selected from
the group as defined herein.
[0027] With regard to the preferred embodiments of the acylhydrazides of formula IA the
preferred embodiments mentioned herein with regard to the acylhydrazides of formula
I are fully applicable.
[0028] According to another preferred embodiment of the invention preference is given to
the acylhydrazides of formula IB, which correspond to acylhydrazides of the formula
I, wherein in case R
1 is pyridyl, preferably a pyridyl selected from the group consisting A1, A2 and A3,
more preferably the pyridy A1, said pyridyl is substituted by at least one substituent
selected from the group as defined herein. "Substituted" in this context means that
the pyridyl carries at least one substituent, which is not hydrogen.
[0029] With regard to the preferred embodiments of the acylhydrazides of formula IB the
preferred embodiments mentioned herein with regard to the acylhydrazides of formula
I are fully applicable.
[0030] Particular preference is given to acylhydrazides of the formula I.1 (which corresponds
to formula I wherein R
1 is A1, wherein R
5 = H and R
8 = H; R
2 and R
3 together form B1, wherein R
11 = H, R
12 = H and R
13 = H; and R
4 = H)

wherein the variables R
6, R
7, and R
10 have the meanings, in particular the preferred meanings, as defined above.
[0031] Most preference to the compounds of the formulae I.1.1 to I.1.378 of Table 1, where
the definitions of the variables R
6, R
7, and R
10 are of particular importance for the compounds according to the invention not only
in combination with one another but in each case also on their own:
Table 1
| No. |
R6 |
R7 |
R10 |
| I.1.1. |
H |
H |
H |
| I.1.2. |
H |
H |
F |
| I.1.3. |
H |
H |
Cl |
| I.1.4. |
H |
H |
NO2 |
| I.1.5. |
H |
H |
CH3 |
| I.1.6. |
H |
H |
OCH3 |
| I.1.7. |
H |
H |
OCH2CF3 |
| I.1.8. |
H |
H |
SCH3 |
| I.1.9. |
H |
H |
SCH2CH2N(CH3)2 |
| I.1.10. |
H |
H |
SO2N(CH3)2 |
| I.1.11. |
H |
H |
S-C6H5 |
| I.1.12. |
H |
H |
O-C6H5 |
| I.1.13. |
H |
H |
O-(4-F-C6H4) |
| I.1.14. |
H |
H |
O-(4-Cl-C6H4) |
| I.1.15. |
H |
F |
H |
| I.1.16. |
H |
F |
F |
| I.1.17. |
H |
F |
Cl |
| I.1.18. |
H |
F |
NO2 |
| I.1.19. |
H |
F |
CH3 |
| I.1.20. |
H |
F |
OCH3 |
| I.1.21. |
H |
F |
OCH2CF3 |
| I.1.22. |
H |
F |
SCH3 |
| I.1.23. |
H |
F |
SCH2CH2N(CH3)2 |
| I.1.24. |
H |
F |
SO2N(CH3)2 |
| I.1.25. |
H |
F |
S-C6H5 |
| I.1.26. |
H |
F |
O-C6H5 |
| I.1.27. |
H |
F |
O-(4-F-C6H4) |
| I.1.28. |
H |
F |
O-(4-Cl-C6H4) |
| I.1.29. |
H |
Cl |
H |
| I.1.30. |
H |
Cl |
F |
| I.1.31. |
H |
Cl |
Cl |
| I.1.32. |
H |
Cl |
NO2 |
| I.1.33. |
H |
Cl |
CH3 |
| I.1.34. |
H |
Cl |
OCH3 |
| I.1.35. |
H |
Cl |
OCH2CF3 |
| I.1.36. |
H |
Cl |
SCH3 |
| I.1.37. |
H |
Cl |
SCH2CH2N(CH3)2 |
| I.1.38. |
H |
Cl |
SO2N(CH3)2 |
| I.1.39. |
H |
Cl |
S-C6H5 |
| I.1.40. |
H |
Cl |
O-C6H5 |
| I.1.41. |
H |
Cl |
O-(4-F-C6H4) |
| I.1.42. |
H |
Cl |
O-(4-Cl-C6H4) |
| I.1.43. |
H |
Br |
H |
| I.1.44. |
H |
Br |
F |
| I.1.45. |
H |
Br |
Cl |
| I.1.46. |
H |
Br |
NO2 |
| I.1.47. |
H |
Br |
CH3 |
| I.1.48. |
H |
Br |
OCH3 |
| I.1.49. |
H |
Br |
OCH2CF3 |
| I.1.50. |
H |
Br |
SCH3 |
| I.1.51. |
H |
Br |
SCH2CH2N(CH3)2 |
| I.1.52. |
H |
Br |
SO2N(CH3)2 |
| I.1.53. |
H |
Br |
S-C6H5 |
| I.1.54. |
H |
Br |
O-C6H5 |
| I.1.55. |
H |
Br |
O-(4-F-C6H4) |
| I.1.56. |
H |
Br |
O-(4-Cl-C6H4) |
| I.1.57. |
H |
I |
H |
| I.1.58. |
H |
I |
F |
| I.1.59. |
H |
I |
Cl |
| I.1.60. |
H |
I |
NO2 |
| I.1.61. |
H |
I |
CH3 |
| I.1.62. |
H |
I |
OCH3 |
| I.1.63. |
H |
I |
OCH2CF3 |
| I.1.64. |
H |
I |
SCH3 |
| I.1.65. |
H |
I |
SCH2CH2N(CH3)2 |
| I.1.66. |
H |
I |
SO2N(CH3)2 |
| I.1.67. |
H |
I |
S-C6H5 |
| I.1.68. |
H |
I |
O-C6H5 |
| I.1.69. |
H |
I |
O-(4-F-C6H4) |
| I.1.70. |
H |
I |
O-(4-Cl-C6H4) |
| I.1.71. |
H |
CH3 |
H |
| I.1.72. |
H |
CH3 |
F |
| I.1.73. |
H |
CH3 |
Cl |
| I.1.74. |
H |
CH3 |
NO2 |
| I.1.75. |
H |
CH3 |
CH3 |
| I.1.76. |
H |
CH3 |
OCH3 |
| I.1.77. |
H |
CH3 |
OCH2CF3 |
| I.1.78. |
H |
CH3 |
SCH3 |
| I.1.79. |
H |
CH3 |
SCH2CH2N(CH3)2 |
| I.1.80. |
H |
CH3 |
SO2N(CH3)2 |
| I.1.81. |
H |
CH3 |
S-C6H5 |
| I.1.82. |
H |
CH3 |
O-C6H5 |
| I.1.83. |
H |
CH3 |
O-(4-F-C6H4) |
| I.1.84. |
H |
CH3 |
O-(4-Cl-C6H4) |
| I.1.85. |
H |
OCH3 |
H |
| I.1.86. |
H |
OCH3 |
F |
| I.1.87. |
H |
OCH3 |
Cl |
| I.1.88. |
H |
OCH3 |
NO2 |
| I.1.89. |
H |
OCH3 |
CH3 |
| I.1.90. |
H |
OCH3 |
OCH3 |
| I.1.91. |
H |
OCH3 |
OCH2CF3 |
| I.1.92. |
H |
OCH3 |
SCH3 |
| I.1.93. |
H |
OCH3 |
SCH2CH2N(CH3)2 |
| I.1.94. |
H |
OCH3 |
SO2N(CH3)2 |
| I.1.95. |
H |
OCH3 |
S-C6H5 |
| I.1.96. |
H |
OCH3 |
O-C6H5 |
| I.1.97. |
H |
OCH3 |
O-(4-F-C6H4) |
| I.1.98. |
H |
OCH3 |
O-(4-Cl-C6H4) |
| I.1.99. |
H |
N(CH3)2 |
H |
| I.1.100 |
H |
N(CH3)2 |
F |
| I.1.101 |
H |
N(CH3)2 |
Cl |
| I.1.102 |
H |
N(CH3)2 |
NO2 |
| I.1.103 |
H |
N(CH3)2 |
CH3 |
| I.1.104 |
H |
N(CH3)2 |
OCH3 |
| I.1.105 |
H |
N(CH3)2 |
OCH2CF3 |
| I.1.106 |
H |
N(CH3)2 |
SCH3 |
| I.1.107 |
H |
N(CH3)2 |
SCH2CH2N(CH3)2 |
| I.1.108 |
H |
N(CH3)2 |
SO2N(CH3)2 |
| I.1.109 |
H |
N(CH3)2 |
S-C6H5 |
| I.1.110 |
H |
N(CH3)2 |
O-C6H5 |
| I.1.111 |
H |
N(CH3)2 |
O-(4-F-C6H4) |
| I.1.112 |
H |
N(CH3)2 |
O-(4-Cl-C6H4) |
| I.1.113 |
H |
C6H5 |
H |
| I.1.114 |
H |
C6H5 |
F |
| I.1.115 |
H |
C6H5 |
Cl |
| I.1.116 |
H |
C6H5 |
NO2 |
| I.1.117 |
H |
C6H5 |
CH3 |
| I.1.118 |
H |
C6H5 |
OCH3 |
| I.1.119 |
H |
C6H5 |
OCH2CF3 |
| I.1.120 |
H |
C6H5 |
SCH3 |
| I.1.121 |
H |
C6H5 |
SCH2CH2N(CH3)2 |
| I.1.122 |
H |
C6H5 |
SO2N(CH3)2 |
| I.1.123 |
H |
C6H5 |
S-C6H5 |
| I.1.124 |
H |
C6H5 |
O-C6H5 |
| I.1.125 |
H |
C6H5 |
O-(4-F-C6H4) |
| I.1.126 |
H |
C6H5 |
O-(4-Cl-C6H4) |
| I.1.127 |
Cl |
H |
H |
| I.1.128 |
Cl |
H |
F |
| I.1.129 |
Cl |
H |
Cl |
| I.1.130 |
Cl |
H |
NO2 |
| I.1.131 |
Cl |
H |
CH3 |
| I.1.132 |
Cl |
H |
OCH3 |
| I.1.133 |
Cl |
H |
OCH2CF3 |
| I.1.134 |
Cl |
H |
SCH3 |
| I.1.135 |
Cl |
H |
SCH2CH2N(CH3)2 |
| I.1.136 |
Cl |
H |
SO2N(CH3)2 |
| I.1.137 |
Cl |
H |
S-C6H5 |
| I.1.138 |
Cl |
H |
O-C6H5 |
| I.1.139 |
Cl |
H |
O-(4-F-C6H4) |
| I.1.140 |
Cl |
H |
O-(4-Cl-C6H4) |
| I.1.141 |
Cl |
F |
H |
| I.1.142 |
Cl |
F |
F |
| I.1.143 |
Cl |
F |
Cl |
| I.1.144 |
Cl |
F |
NO2 |
| I.1.145 |
Cl |
F |
CH3 |
| I.1.146 |
Cl |
F |
OCH3 |
| I.1.147 |
Cl |
F |
OCH2CF3 |
| I.1.148 |
Cl |
F |
SCH3 |
| I.1.149 |
Cl |
F |
SCH2CH2N(CH3)2 |
| I.1.150 |
Cl |
F |
SO2N(CH3)2 |
| I.1.151 |
Cl |
F |
S-C6H5 |
| I.1.152 |
Cl |
F |
O-C6H5 |
| I.1.153 |
Cl |
F |
O-(4-F-C6H4) |
| I.1.154 |
Cl |
F |
O-(4-Cl-C6H4) |
| I.1.155 |
Cl |
Cl |
H |
| I.1.156 |
Cl |
Cl |
F |
| I.1.157 |
Cl |
Cl |
Cl |
| I.1.158 |
Cl |
Cl |
NO2 |
| I.1.159 |
Cl |
Cl |
CH3 |
| I.1.160 |
Cl |
Cl |
OCH3 |
| I.1.161 |
Cl |
Cl |
OCH2CF3 |
| I.1.162 |
Cl |
Cl |
SCH3 |
| I.1.163 |
Cl |
Cl |
SCH2CH2N(CH3)2 |
| I.1.164 |
Cl |
Cl |
SO2N(CH3)2 |
| I.1.165 |
Cl |
Cl |
S-C6H5 |
| I.1.166 |
Cl |
Cl |
O-C6H5 |
| I.1.167 |
Cl |
Cl |
O-(4-F-C6H4) |
| I.1.168 |
Cl |
Cl |
O-(4-Cl-C6H4) |
| I.1.169 |
Cl |
Br |
H |
| I.1.170 |
Cl |
Br |
F |
| I.1.171 |
Cl |
Br |
Cl |
| I.1.172 |
Cl |
Br |
NO2 |
| I.1.173 |
Cl |
Br |
CH3 |
| I.1.174 |
Cl |
Br |
OCH3 |
| I.1.175 |
Cl |
Br |
OCH2CF3 |
| I.1.176 |
Cl |
Br |
SCH3 |
| I.1.177 |
Cl |
Br |
SCH2CH2N(CH3)2 |
| I.1.178 |
Cl |
Br |
SO2N(CH3)2 |
| I.1.179 |
Cl |
Br |
S-C6H5 |
| I.1.180 |
Cl |
Br |
O-C6H5 |
| I.1.181 |
Cl |
Br |
O-(4-F-C6H4) |
| I.1.182 |
Cl |
Br |
O-(4-Cl-C6H4) |
| I.1.183 |
Cl |
I |
H |
| I.1.184 |
Cl |
I |
F |
| I.1.185 |
Cl |
I |
Cl |
| I.1.186 |
Cl |
I |
NO2 |
| I.1.187 |
Cl |
I |
CH3 |
| I.1.188 |
Cl |
I |
OCH3 |
| I.1.189 |
Cl |
I |
OCH2CF3 |
| I.1.190 |
Cl |
I |
SCH3 |
| I.1.191 |
Cl |
I |
SCH2CH2N(CH3)2 |
| I.1.192 |
Cl |
I |
SO2N(CH3)2 |
| I.1.193 |
Cl |
I |
S-C6H5 |
| I.1.194 |
Cl |
I |
O-C6H5 |
| I.1.195 |
Cl |
I |
O-(4-F-C6H4) |
| I.1.196 |
Cl |
I |
O-(4-Cl-C6H4) |
| I.1.197 |
Cl |
CH3 |
H |
| I.1.198 |
Cl |
CH3 |
F |
| I.1.199 |
Cl |
CH3 |
Cl |
| I.1.200 |
Cl |
CH3 |
NO2 |
| I.1.201 |
Cl |
CH3 |
CH3 |
| I.1.202 |
Cl |
CH3 |
OCH3 |
| I.1.203 |
Cl |
CH3 |
OCH2CF3 |
| I.1.204 |
Cl |
CH3 |
SCH3 |
| I.1.205 |
Cl |
CH3 |
SCH2CH2N(CH3)2 |
| I.1.206 |
Cl |
CH3 |
SO2N(CH3)2 |
| I.1.207 |
Cl |
CH3 |
S-C6H5 |
| I.1.208 |
Cl |
CH3 |
O-C6H5 |
| I.1.209 |
Cl |
CH3 |
O-(4-F-C6H4) |
| I.1.210 |
Cl |
CH3 |
O-(4-Cl-C6H4) |
| I.1.211 |
Cl |
OCH3 |
H |
| I.1.212 |
Cl |
OCH3 |
F |
| I.1.213 |
Cl |
OCH3 |
Cl |
| I.1.214 |
Cl |
OCH3 |
NO2 |
| I.1.215 |
Cl |
OCH3 |
CH3 |
| I.1.216 |
Cl |
OCH3 |
OCH3 |
| I.1.217 |
Cl |
OCH3 |
OCH2CF3 |
| I.1.218 |
Cl |
OCH3 |
SCH3 |
| I.1.219 |
Cl |
OCH3 |
SCH2CH2N(CH3)2 |
| I.1.220 |
Cl |
OCH3 |
SO2N(CH3)2 |
| I.1.221 |
Cl |
OCH3 |
S-C6H5 |
| I.1.222 |
Cl |
OCH3 |
O-C6H5 |
| I.1.223 |
Cl |
OCH3 |
O-(4-F-C6H4) |
| I.1.224 |
Cl |
OCH3 |
O-(4-Cl-C6H4) |
| I.1.225 |
Cl |
N(CH3)2 |
H |
| I.1.226 |
Cl |
N(CH3)2 |
F |
| I.1.227 |
Cl |
N(CH3)2 |
Cl |
| I.1.228 |
Cl |
N(CH3)2 |
NO2 |
| I.1.229 |
Cl |
N(CH3)2 |
CH3 |
| I.1.230 |
Cl |
N(CH3)2 |
OCH3 |
| I.1.231 |
Cl |
N(CH3)2 |
OCH2CF3 |
| I.1.232 |
Cl |
N(CH3)2 |
SCH3 |
| I.1.233 |
Cl |
N(CH3)2 |
SCH2CH2N(CH3)2 |
| I.1.234 |
Cl |
N(CH3)2 |
SO2N(CH3)2 |
| I.1.235 |
Cl |
N(CH3)2 |
S-C6H5 |
| I.1.236 |
Cl |
N(CH3)2 |
O-C6H5 |
| I.1.237 |
Cl |
N(CH3)2 |
O-(4-F-C6H4) |
| I.1.238 |
Cl |
N(CH3)2 |
O-(4-Cl-C6H4) |
| I.1.239 |
Cl |
C6H5 |
H |
| I.1.240 |
Cl |
C6H5 |
F |
| I.1.241 |
Cl |
C6H5 |
Cl |
| I.1.242 |
Cl |
C6H5 |
NO2 |
| I.1.243 |
Cl |
C6H5 |
CH3 |
| I.1.244 |
Cl |
C6H5 |
OCH3 |
| I.1.245 |
Cl |
C6H5 |
OCH2CF3 |
| I.1.246 |
Cl |
C6H5 |
SCH3 |
| I.1.247 |
Cl |
C6H5 |
SCH2CH2N(CH3)2 |
| I.1.248 |
Cl |
C6H5 |
SO2N(CH3)2 |
| I.1.249 |
Cl |
C6H5 |
S-C6H5 |
| I.1.250 |
Cl |
C6H5 |
O-C6H5 |
| I.1.251 |
Cl |
C6H5 |
O-(4-F-C6H4) |
| I.1.252 |
Cl |
C6H5 |
O-(4-Cl-C6H4) |
| I.1.253 |
CH3 |
H |
H |
| I.1.254 |
CH3 |
H |
F |
| I.1.255 |
CH3 |
H |
Cl |
| I.1.256 |
CH3 |
H |
NO2 |
| I.1.257 |
CH3 |
H |
CH3 |
| I.1.258 |
CH3 |
H |
OCH3 |
| I.1.259 |
CH3 |
H |
OCH2CF3 |
| I.1.260 |
CH3 |
H |
SCH3 |
| I.1.261 |
CH3 |
H |
SCH2CH2N(CH3)2 |
| I.1.262 |
CH3 |
H |
SO2N(CH3)2 |
| I.1.263 |
CH3 |
H |
S-C6H5 |
| I.1.264 |
CH3 |
H |
O-C6H5 |
| I.1.265 |
CH3 |
H |
O-(4-F-C6H4) |
| I.1.266 |
CH3 |
H |
O-(4-Cl-C6H4) |
| I.1.267 |
CH3 |
F |
H |
| I.1.268 |
CH3 |
F |
F |
| I.1.269 |
CH3 |
F |
Cl |
| I.1.270 |
CH3 |
F |
NO2 |
| I.1.271 |
CH3 |
F |
CH3 |
| I.1.272 |
CH3 |
F |
OCH3 |
| I.1.273 |
CH3 |
F |
OCH2CF3 |
| I.1.274 |
CH3 |
F |
SCH3 |
| I.1.275 |
CH3 |
F |
SCH2CH2N(CH3)2 |
| I.1.276 |
CH3 |
F |
SO2N(CH3)2 |
| I.1.277 |
CH3 |
F |
S-C6H5 |
| I.1.278 |
CH3 |
F |
O-C6H5 |
| I.1.279 |
CH3 |
F |
O-(4-F-C6H4) |
| I.1.280 |
CH3 |
F |
O-(4-Cl-C6H4) |
| I.1.281 |
CH3 |
Cl |
H |
| I.1.282 |
CH3 |
Cl |
F |
| I.1.283 |
CH3 |
Cl |
Cl |
| I.1.284 |
CH3 |
Cl |
NO2 |
| I.1.285 |
CH3 |
Cl |
CH3 |
| I.1.286 |
CH3 |
Cl |
OCH3 |
| I.1.287 |
CH3 |
Cl |
OCH2CF3 |
| I.1.288 |
CH3 |
Cl |
SCH3 |
| I.1.289 |
CH3 |
Cl |
SCH2CH2N(CH3)2 |
| I.1.290 |
CH3 |
Cl |
SO2N(CH3)2 |
| I.1.291 |
CH3 |
Cl |
S-C6H5 |
| I.1.292 |
CH3 |
Cl |
O-C6H5 |
| I.1.293 |
CH3 |
Cl |
O-(4-F-C6H4) |
| I.1.294 |
CH3 |
Cl |
O-(4-Cl-C6H4) |
| I.1.295 |
CH3 |
Br |
H |
| I.1.296 |
CH3 |
Br |
F |
| I.1.297 |
CH3 |
Br |
Cl |
| I.1.298 |
CH3 |
Br |
NO2 |
| I.1.299 |
CH3 |
Br |
CH3 |
| I.1.300 |
CH3 |
Br |
OCH3 |
| I.1.301 |
CH3 |
Br |
OCH2CF3 |
| I.1.302 |
CH3 |
Br |
SCH3 |
| I.1.303 |
CH3 |
Br |
SCH2CH2N(CH3)2 |
| I.1.304 |
CH3 |
Br |
SO2N(CH3)2 |
| I.1.305 |
CH3 |
Br |
S-C6H5 |
| I.1.306 |
CH3 |
Br |
O-C6H5 |
| I.1.307 |
CH3 |
Br |
O-(4-F-C6H4) |
| I.1.308 |
CH3 |
Br |
O-(4-Cl-C6H4) |
| I.1.309 |
CH3 |
I |
H |
| I.1.310 |
CH3 |
I |
F |
| I.1.311 |
CH3 |
I |
Cl |
| I.1.312 |
CH3 |
I |
NO2 |
| I.1.313 |
CH3 |
I |
CH3 |
| I.1.314 |
CH3 |
I |
OCH3 |
| I.1.315 |
CH3 |
I |
OCH2CF3 |
| I.1.316 |
CH3 |
I |
SCH3 |
| I.1.317 |
CH3 |
I |
SCH2CH2N(CH3)2 |
| I.1.318 |
CH3 |
I |
SO2N(CH3)2 |
| I.1.319 |
CH3 |
I |
S-C6H5 |
| I.1.320 |
CH3 |
I |
O-C6H5 |
| I.1.321 |
CH3 |
I |
O-(4-F-C6H4) |
| I.1.322 |
CH3 |
I |
O-(4-Cl-C6H4) |
| I.1.323 |
CH3 |
CH3 |
H |
| I.1.324 |
CH3 |
CH3 |
F |
| I.1.325 |
CH3 |
CH3 |
Cl |
| I.1.326 |
CH3 |
CH3 |
NO2 |
| I.1.327 |
CH3 |
CH3 |
CH3 |
| I.1.328 |
CH3 |
CH3 |
OCH3 |
| I.1.329 |
CH3 |
CH3 |
OCH2CF3 |
| I.1.330 |
CH3 |
CH3 |
SCH3 |
| I.1.331 |
CH3 |
CH3 |
SCH2CH2N(CH3)2 |
| I.1.332 |
CH3 |
CH3 |
SO2N(CH3)2 |
| I.1.333 |
CH3 |
CH3 |
S-C6H5 |
| I.1.334 |
CH3 |
CH3 |
O-C6H5 |
| I.1.335 |
CH3 |
CH3 |
O-(4-F-C6H4) |
| I.1.336 |
CH3 |
CH3 |
O-(4-Cl-C6H4) |
| I.1.337 |
CH3 |
OCH3 |
H |
| I.1.338 |
CH3 |
OCH3 |
F |
| I.1.339 |
CH3 |
OCH3 |
Cl |
| I.1.340 |
CH3 |
OCH3 |
NO2 |
| I.1.341 |
CH3 |
OCH3 |
CH3 |
| I.1.342 |
CH3 |
OCH3 |
OCH3 |
| I.1.343 |
CH3 |
OCH3 |
OCH2CF3 |
| I.1.344 |
CH3 |
OCH3 |
SCH3 |
| I.1.345 |
CH3 |
OCH3 |
SCH2CH2N(CH3)2 |
| I.1.346 |
CH3 |
OCH3 |
SO2N(CH3)2 |
| I.1.347 |
CH3 |
OCH3 |
S-C6H5 |
| I.1.348 |
CH3 |
OCH3 |
O-C6H5 |
| I.1.349 |
CH3 |
OCH3 |
O-(4-F-C6H4) |
| I.1.350 |
CH3 |
OCH3 |
O-(4-Cl-C6H4) |
| I.1.351 |
CH3 |
N(CH3)2 |
H |
| I.1.352 |
CH3 |
N(CH3)2 |
F |
| I.1.353 |
CH3 |
N(CH3)2 |
Cl |
| I.1.354 |
CH3 |
N(CH3)2 |
NO2 |
| I.1.355 |
CH3 |
N(CH3)2 |
CH3 |
| I.1.356 |
CH3 |
N(CH3)2 |
OCH3 |
| I.1.357 |
CH3 |
N(CH3)2 |
OCH2CF3 |
| I.1.358 |
CH3 |
N(CH3)2 |
SCH3 |
| I.1.359 |
CH3 |
N(CH3)2 |
SCH2CH2N(CH3)2 |
| I.1.360 |
CH3 |
N(CH3)2 |
SO2N(CH3)2 |
| I.1.361 |
CH3 |
N(CH3)2 |
S-C6H5 |
| I.1.362 |
CH3 |
N(CH3)2 |
O-C6H5 |
| I.1.363 |
CH3 |
N(CH3)2 |
O-(4-F-C6H4) |
| I.1.364 |
CH3 |
N(CH3)2 |
O-(4-Cl-C6H4) |
| I.1.365 |
CH3 |
C6H5 |
H |
| I.1.366 |
CH3 |
C6H5 |
F |
| I.1.367 |
CH3 |
C6H5 |
Cl |
| I.1.368 |
CH3 |
C6H5 |
NO2 |
| I.1.369 |
CH3 |
C6H5 |
CH3 |
| I.1.370 |
CH3 |
C6H5 |
OCH3 |
| I.1.371 |
CH3 |
C6H5 |
OCH2CF3 |
| I.1.372 |
CH3 |
C6H5 |
SCH3 |
| I.1.373 |
CH3 |
C6H5 |
SCH2CH2N(CH3)2 |
| I.1.374 |
CH3 |
C6H5 |
SO2N(CH3)2 |
| I.1.375 |
CH3 |
C6H5 |
S-C6H5 |
| I.1.376 |
CH3 |
C6H5 |
O-C6H5 |
| I.1.377 |
CH3 |
C6H5 |
O-(4-F-C6H4) |
| I.1.378 |
CH3 |
C6H5 |
O-(4-Cl-C6H4) |
[0032] Also preferred are the acylhydrazides of formula 1.2, particularly preferred the
acylhydrazides of formulae I.2.1 to 1.2.378, which differ from the corresponding acylhydrazides
of formulae I.1.1 to I.1.378 only in that R
8 is CH
3:

[0033] Also preferred are the acylhydrazides of formula 1.3, particularly preferred the
acylhydrazides of formulae I.3.1 to I.3.378, which differ from the corresponding acylhydrazides
of formulae I.1.1 to I.1.378 only in that R
11 is F:

[0034] Also preferred are the acylhydrazides of formula 1.4, particularly preferred the
acylhydrazides of formulae I.4.1 to I.4.378, which differ from the corresponding acylhydrazides
of formulae I.1.1 to I.1.378 only in that R
8 is CH
3 and R
11 is F:

[0035] Also preferred are the acylhydrazides of formula 1.5, particularly preferred the
acylhydrazides of formulae I.5.1 to I.5.378, which differ from the corresponding acylhydrazides
of formulae I.1.1 to I.1.378 only in that R
12 is F:

[0036] Also preferred are the acylhydrazides of formula 1.6, particularly preferred the
acylhydrazides of formulae I.6.1 to 1.6.378, which differ from the corresponding acylhydrazides
of formulae I.1.1 to I.1.378 only in that R
8 is CH
3 and R
12 is F:

[0037] Also preferred are the acylhydrazides of formula 1.7, particularly preferred the
acylhydrazides of formulae I.7.1 to I.7.378, which differ from the corresponding acylhydrazides
of formulae I.1.1 to I.1.378 only in that R
13 is F:

[0038] Also preferred are the acylhydrazides of formula 1.8, particularly preferred the
acylhydrazides of formulae I.8.1 to I.8.378, which differ from the corresponding acylhydrazides
of formulae I.1.1 to I.1.378 only in that R
8 is CH
3 and R
13 is F:

[0039] Also preferred are the acylhydrazides of formula 1.9, particularly preferred the
acylhydrazides of formulae I.9.1 to I.9.378, which differ from the corresponding acylhydrazides
of formulae I.1.1 to I.1.378 only in that R
11 and R
12 are F:

[0040] Also preferred are the acylhydrazides of formula I.10, particularly preferred the
acylhydrazides of formulae I.10.1 to I.10.378, which differ from the corresponding
acylhydrazides of formulae I.1.1 to I.1.378 only in that R
8 is CH
3, and R
11 and R
12 are F:

[0041] Also preferred are the acylhydrazides of formula I.11, particularly preferred the
acylhydrazides of formulae I.11.1 to I.11.378, which differ from the corresponding
acylhydrazides of formulae I.1.1 to I.1.378 only in that R
11 and R
13 are F:

[0042] Also preferred are the acylhydrazides of formula I.12, particularly preferred the
acylhydrazides of formulae I.12.1 to I.12.378, which differ from the corresponding
acylhydrazides of formulae I.1.1 to I.1.378 only in that R
8 is CH
3, R
11 and R
13 are F:

[0043] Also preferred are the acylhydrazides of formula I.13, particularly preferred the
acylhydrazides of formulae I.13.1 to I.13.378, which differ from the corresponding
acylhydrazides of formulae I.1.1 to I.1.378 only in that R
12 and R
13 are F:

[0044] Also preferred are the acylhydrazides of formula 1.14, particularly preferred the
acylhydrazides of formulae I.14.1 to 1.14.378, which differ from the corresponding
acylhydrazides of formulae I.1.1 to I.1.378 only in that R
8 is CH
3, and R
12 and R
13 are F:

[0045] Also preferred are the acylhydrazides of formula I.15, particularly preferred the
acylhydrazides of formulae I.15.1 to I.15.378, which differ from the corresponding
acylhydrazides of formulae I.1.1 to I.1.378 only in that R
11, R
12 and R
13 are F:

[0046] Also preferred are the acylhydrazides of formula I.16, particularly preferred the
acylhydrazides of formulae I.16.1 to I.16.378, which differ from the corresponding
acylhydrazides of formulae I.1.1 to I.1.378 only in that R
8 is CH
3, and R
11, R
12 and R
13 are F:

[0047] The acylhydrazides of formula I according to the invention can be prepared by standard
processes of organic chemistry, for example by the following processes:
Process A)
[0048] The acylhydrazides of formula I, wherein R
4 is hydrogen can be obtained by direct cyclisation of an cyclyl-1,2-dinitrile of formula
II with an hydrazide of formula III:

[0049] The cyclisation of the cyclyl-1,2-dinitrile of formula II with the hydrazide of formula
III is usually carried out at from 20°C to the boiling point of the reaction mixture,
preferably at from 50°C to 150°C, particularly preferably at from 80°C to 150°C, in
an inert organic solvent optionally in the presence of a base (
Eur. J. of Org. Chem. (12) 2006, 2833-2842).
[0050] Suitable solvents are aliphatic hydrocarbons such as pentane, hexane, cyclohexane
and mixtures of C
5-C
8-alkanes, aromatic hydrocarbons such as tolene, o-, m- and p-xylene, halogenated hydrocarbons
such asdichloromethane, 1,2-dichloroethane, chloroform and chlorobenzene, ethers such
as diethyl ether, diisopropyl ether, tert.-butyl methylether, dioxane, anisole and
tetrahydrofuran, nitriles such as acetonitrile and propionitrile, ketones such as
acetone, methyl ethyl ketone, diethyl ketone and tert-butyl methyl ketone, alkoholes
such as methanol, ethanol, n-propanol, isopropanol, n-butanol, isobutanol and tert.-butanol,
as well as dimethylsulfoxide, dimethylformamide and N,N-dimethylacetamide or N.methylpyrrolidone.
Particular preference is given to alkoholes such as methanol, ethanol, n-propanol,
isopropanol, n-butanol, isobutanol and tert.-butanol. It is also possible to use mixtures
of the solvents mentioned. Suitable bases are, in general inorganic compounds such
as alkali metal and alkaline earth metal hydroxides such as lithium hydroxide, sodium
hydroxide, potassium hydroxide and calcium hydroxide, alkali metal and alkaline earth
metal oxide such as lithium oxide, sodium oxide, calcium oxide and magnesium oxide,
alkali metal and alkaline earth metal hydrides such as lithium hydride, sodium hydride,
potassium hydride and calcium hydride, alkali metal amides such as lithium amide,
sodium amide and potassium amide, alkali metal and alkaline earth metal carbonates
such as lithium carbonate, potassium carbonate and calcium carbonate, as well as alkali
metal bicarbonates such as sodium bicarbonate, alkyl magnesium halides such as methyl
magnesium chloride as well as alkali metal and alkaline earth metal alkoxides such
as sodium methoxide, sodium ethoxide, potassium ethoxide, potassium tert-butoxide,
potassium tert-pentoxide and dimethoxymagnesium, and furthermore organic bases such
as tertiary amines such as trimethylamine, triethylamine, diisopropylethylamine and
N-methylpiperidine, pyridine, substituted pyridines such as collidine, lutidine, N-methylmorpholine
and 4-dimethylaminopyridine and also bicyclic amines. Particular preference is given
to alkali metal and alkaline earth metal alkoxides such as sodium methoxide, sodium
ethoxide, potassium ethoxide, potassium tert-butoxide, potassium tert-pentoxide and
dimethoxymagnesium.
[0051] The bases are generally employed in catalytic amounts however they can also be employed
in equimolar amounts, in excess or, if appropriate, be used as solvent.
[0052] The reaction mixtures are worked up in a customary manner, for example by mixing
with water, separation of the phases and, if appropriate, chromatographic purification
of the crude product. Some of the intermediates and end products are obtained in the
form of viscous oils, which can be purified or freed from volatile components under
reduced pressure and at moderately elevated temperature. If the intermediates and
the end products are obtained as solid, purification can also be carried out by recrystallisation
or digestion.
Process B)
[0053] As an alternative, the acylhydrazides of formula I can be obtained by first cyclizing
the cyclyl-1,2-dinitrile of formula II with an amine IV, preferably ammonia, to give
the corresponding 3-imino-3H-isoindol-1-ylamine of formula V, and then subsequently
substituting one amino group with the corresponding hydrazide of formula III:

[0054] The cyclisation of the cyclyl-1,2-dinitrile of formula II with ammonia is usually
carried out at from 0°C to the boiling point of the reaction mixture, preferably at
from 20°C to 150°C, particularly preferably at from 20°C to 100°C, in an inert organic
solvent optionally in the presence of a base (
Tetrahedron Letters 2003, 44 (9), 1967 - 1970).
[0055] Suitable solvents are aliphatic hydrocarbons such as pentane, hexane, cyclohexane
and mixtures of C
5-C
8-alkanes, aromatic hydrocarbons such as tolene, o-, m- and p-xylene, halogenated hydrocarbons
such asdichloromethane, 1,2-dichloroethane, chloroform and chlorobenzene, ethers such
as diethyl ether, diisopropyl ether, tert.-butyl methylether, dioxane, anisole and
tetrahydrofuran, nitriles such as acetonitrile and propionitrile, ketones such as
acetone, methyl ethyl ketone, diethyl ketone and tert-butyl methyl ketone, alkoholes
such as methanol, ethanol, n-propanol, isopropanol, n-butanol and tert.-butanol, as
well as dimethylsulfoxide, dimethylformamide and N,N-dimethylacetamide or N.methylpyrrolidone.
Particular preference is given to alkoholes such as methanol, ethanol, n-propanol,
isopropanol, n-butanol and tert.-butanol. It is also possible to use mixtures of the
solvents mentioned.
[0056] Suitable bases are, in general inorganic compounds such as alkali metal and alkaline
earth metal hydroxides such as lithium hydroxide, sodium hydroxide, potassium hydroxide
and calcium hydroxide, alkali metal and alkaline earth metal oxide such as lithium
oxide, sodium oxide, calcium oxide and magnesium oxide, alkali metal and alkaline
earth metal hydrides such as lithium hydride, sodium hydride, potassium hydride and
calcium hydride, alkali metal amides such as lithium amide, sodium amide and potassium
amide, alkali metal and alkaline earth metal carbonates such as lithium carbonate,
potassium carbonate and calcium carbonate, as well as alkali metal bicarbonates such
as sodium bicarbonate, alkyl magnesium halides such as methyl magnesium chloride as
well as alkali metal and alkaline earth metal alkoxides such as sodium methoxide,
sodium ethoxide, potassium ethoxide, potassium tert-butoxide, potassium tert-pentoxide
and dimethoxymagnesium, and furthermore organic bases such as tertiary amines such
as trimethylamine, triethylamine, diisopropylethylamine and N-methylpiperidine, pyridine,
substituted pyridines such as collidine, lutidine, N-methylmorpholine and 4-dimethylaminopyridine
and also bicyclic amines. Particular preference is given to alkali metal and alkaline
earth metal alkoxides such as sodium methoxide, sodium ethoxide, potassium ethoxide,
potassium tert-butoxide, potassium tert-pentoxide and dimethoxymagnesium. The bases
are generally employed in catalytic amounts however they can also be employed in equimolar
amounts, in excess or, if appropriate, be used as solvent.
[0057] Work up can be carried out in a known manner. It is also possible to use the crude
reaction mixture containing the 3-imino-3H-isoindol-1-ylamine of formula V within
the next step.
[0058] The subsequent substitution of one amino group of the 3-imino-3H-isoindol-1-ylamine
of formula V with the hydrazide III is usually carried out at from 20°C to the boiling
point of the reaction mixture, preferably at from 20°C to 150°C, particularly preferably
at from 50°C to 150°C, in an inert organic solvent optionally in the presence of a
base (
Eur. J. of Org. Chem. (12) 2006, 2833-2842)
[0059] Suitable solvents are aliphatic hydrocarbons such as pentane, hexane, cyclohexane
and mixtures of C
5-C
8-alkanes, aromatic hydrocarbons such as tolene, o-, m- and p-xylene, halogenated hydrocarbons
such asdichloromethane, 1,2-dichloroethane, chloroform and chlorobenzene, ethers such
as diethyl ether, diisopropyl ether, tert.-butyl methylether, dioxane, anisole and
tetrahydrofuran, nitriles such as acetonitrile and propionitrile, ketones such as
acetone, methyl ethyl ketone, diethyl ketone and tert-butyl methyl ketone, alkoholes
such as methanol, ethanol, n-propanol, isopropanol, n-butanol and tert.-butanol, as
well as dimethylsulfoxide, dimethylformamide and N,N-dimethylacetamide or N.methylpyrrolidone.
Particular preference is given to alkoholes such as methanol, ethanol, n-propanol,
isopropanol, n-butanol and tert.-butanol. It is also possible to use mixtures of the
solvents mentioned.
[0060] Suitable bases are, in general inorganic compounds such as alkali metal and alkaline
earth metal hydroxides such as lithium hydroxide, sodium hydroxide, potassium hydroxide
and calcium hydroxide, alkali metal and alkaline earth metal oxide such as lithium
oxide, sodium oxide, calcium oxide and magnesium oxide, alkali metal and alkaline
earth metal hydrides such as lithium hydride, sodium hydride, potassium hydride and
calcium hydride, alkali metal amides such as lithium amide, sodium amide and potassium
amide, alkali metal and alkaline earth metal carbonates such as lithium carbonate,
potassium carbonate and calcium carbonate, as well as alkali metal bicarbonates such
as sodium bicarbonate, alkyl magnesium halides such as methyl magnesium chloride as
well as alkali metal and alkaline earth metal alkoxides such as sodium methoxide,
sodium ethoxide, potassium ethoxide, potassium tert-butoxide, potassium tert-pentoxide
and dimethoxymagnesium, and furthermore organic bases, such as tertiary amines such
as trimethylamine, triethylamine, diisopropylethylamine and N-methylpiperidine, pyridine,
substituted pyridines such as collidine, lutidine, N-methylmorpholine and 4-dimethylaminopyridine
and also bicyclic amines. Particular preference is given to alkali metal and alkaline
earth metal alkoxides such as sodium methoxide, sodium ethoxide, potassium ethoxide,
potassium tert-butoxide, potassium tert-pentoxide and dimethoxymagnesium. The bases
are generally employed in catalytic amounts however they can also be employed in equimolar
amounts, in excess or, if appropriate, be used as solvent.
[0061] Work up can be carried out in a known manner.
Process C)
[0062] Alternatively the acylhydrazides of formula I, wherein R
4 is hydrogen, can be obtained by first cyclizing the cyclyl-1,2-dinitrile of formula
II with hydrazine to give the corresponding 3-hydrazono-3H-isoindol-1-ylamine of formula
VI, which is then acylated with an carbonyl compound of formula VII:

[0063] L
1 stands for a nucleophilically displaceable leaving group such as halogen, hydroxy,
C
1-C
6-alkoxy, C
1-C
6-alkylcarbonyloxy, C
1-C
6-alkylamino-iminocarbonyloxy, C
1-C
6-alkylsulfonyl, C
1-C
6-haloalkylsulfonyl, C
1-C
6-alkylsulfonyloxy, C
1-C
6-haloalkylsulfonyloxy, arylsulfonyl, arylsulfonyloxy or trialkylammonium.
[0064] The cyclisation of the cyclyl-1,2-dinitrile of formula
II with hydrazine is usually carried out at from 0°C to the boiling point of the reaction
mixture, preferably at from 0°C to 150°C, particularly preferably at from 0°C to 150°C,
in an inert organic solvent optionally in the presence of a base (
Eur. J. of Org. Chem. (12) 2006, 2833-2842).
[0065] Suitable solvents are aliphatic hydrocarbons such as pentane, hexane, cyclohexane
and mixtures of C
5-C
8-alkanes, aromatic hydrocarbons such as tolene, o-, m- and p-xylene, halogenated hydrocarbons
such asdichloromethane, 1,2-dichloroethane, chloroform and chlorobenzene, ethers such
as diethyl ether, diisopropyl ether, tert.-butyl methylether, dioxane, anisole and
tetrahydrofuran, nitriles such as acetonitrile and propionitrile, ketones such as
acetone, methyl ethyl ketone, diethyl ketone and tert-butyl methyl ketone, alkoholes
such as methanol, ethanol, n-propanol, isopropanol, n-butanol and tert.-butanol, as
well as dimethylsulfoxide, dimethylformamide and N,N-dimethylacetamide or N.methylpyrrolidone.
Particular preference is given to alkoholes such as methanol, ethanol, n-propanol,
isopropanol, n-butanol and tert.-butanol. It is also possible to use mixtures of the
solvents mentioned.
[0066] Suitable bases are, in general inorganic compounds such as alkali metal and alkaline
earth metal hydroxides such as lithium hydroxide, sodium hydroxide, potassium hydroxide
and calcium hydroxide, alkali metal and alkaline earth metal oxide such as lithium
oxide, sodium oxide, calcium oxide and magnesium oxide, alkali metal and alkaline
earth metal hydrides such as lithium hydride, sodium hydride, potassium hydride and
calcium hydride, alkali metal amides such as lithium amide, sodium amide and potassium
amide, alkali metal and alkaline earth metal carbonates such as lithium carbonate,
potassium carbonate and calcium carbonate, as well as alkali metal bicarbonates such
as sodium bicarbonate, alkyl magnesium halides such as methyl magnesium chloride as
well as alkali metal and alkaline earth metal alkoxides such as sodium methoxide,
sodium ethoxide, potassium ethoxide, potassium tert-butoxide, potassium tert-pentoxide
and dimethoxymagnesium, and furthermore organic bases, such as tertiary amines such
as trimethylamine, triethylamine, diisopropylethylamine and N-methylpiperidine, pyridine,
substituted pyridines such as collidine, lutidine, N-methylmorpholine and 4-dimethylaminopyridine
and also bicyclic amines. Particular preference is given to alkali metal and alkaline
earth metal alkoxides such as sodium methoxide, sodium ethoxide, potassium ethoxide,
potassium tert-butoxide, potassium tert-pentoxide and dimethoxymagnesium. The bases
are generally employed in catalytic amounts however they can also be employed in equimolar
amounts, in excess or, if appropriate, be used as solvent.
[0067] Work up can be carried out in a known manner. It is also possible to use the crude
reaction mixture containing the 3-hydrazono-3H-isoindol-1-ylamine of formula VI within
the next step.
[0068] The subsequent acylation of the 3-hydrazono-3H-isoindol-1-ylamine of formula VI with
with a carbonyl compound of formula VII is usually carried out at from 0°C to the
boiling point of the reaction mixture, preferably at from 0°C to 150°C, particularly
preferably at from 20°C to 150°C, in an inert organic solvent optionally in the presence
of a base (
Eur. J. of Org. Chem. (12) 2006, 2833-2842).
[0069] Suitable solvents are aliphatic hydrocarbons such as pentane, hexane, cyclohexane
and mixtures of C
5-C
8-alkanes, aromatic hydrocarbons such as tolene, o-, m- and p-xylene, halogenated hydrocarbons
such asdichloromethane, 1,2-dichloroethane, chloroform and chlorobenzene, ethers such
as diethyl ether, diisopropyl ether, tert.-butyl methylether, dioxane, anisole and
tetrahydrofuran, nitriles such as acetonitrile and propionitrile, ketones such as
acetone, methyl ethyl ketone, diethyl ketone and tert-butyl methyl ketone, alkoholes
such as methanol, ethanol, n-propanol, isopropanol, n-butanol and tert.-butanol, as
well as dimethylsulfoxide, dimethylformamide and N,N-dimethylacetamide or N.methylpyrrolidone,
Particular preference is given to alkoholes such as methanol, ethanol, n-propanol,
isopropanol, n-butanol and tert.-butanol. It is also possible to use mixtures of the
solvents mentioned.
[0070] Suitable bases are, in general inorganic compounds such as alkali metal and alkaline
earth metal hydroxides such as lithium hydroxide, sodium hydroxide, potassium hydroxide
and calcium hydroxide, alkali metal and alkaline earth metal oxide such as lithium
oxide, sodium oxide, calcium oxide and magnesium oxide, alkali metal and alkaline
earth metal hydrides such as lithium hydride, sodium hydride, potassium hydride and
calcium hydride, alkali metal amides such as lithium amide, sodium amide and potassium
amide, alkali metal and alkaline earth metal carbonates such as lithium carbonate,
potassium carbonate and calcium carbonate, as well as alkali metal bicarbonates such
as sodium bicarbonate, alkyl magnesium halides such as methyl magnesium chloride as
well as alkali metal and alkaline earth metal alkoxides such as sodium methoxide,
sodium ethoxide, potassium ethoxide, potassium tert-butoxide, potassium tert-pentoxide
and dimethoxymagnesium, and furthermore organic bases, such as tertiary amines such
as trimethylamine, triethylamine, diisopropylethylamine and N-methylpiperidine, pyridine,
substituted pyridines such as collidine, lutidine, N-methylmorpholine and 4-dimethylaminopyridine
and also bicyclic amines. Particular preference is given to alkali metal and alkaline
earth metal alkoxides such as sodium methoxide, sodium ethoxide, potassium ethoxide,
potassium tert-butoxide, potassium tert-pentoxide and dimethoxymagnesium. The bases
are generally employed in catalytic amounts, however they can also be employed in
equimolar amounts, in excess or, if appropriate, be used as solvent.
[0071] Work up can be carried out in a known manner.
Process D:
[0072] The acylhydrazides of formula I, wherein R
4 is formyl or C
1-C
6-alkylcarbonyl can be obtained by acylation of the respective acylhydrazides of formula
I, wherein R
4 is hydrogen:

[0073] L
2 stand for a nucleophilically displaceable leaving group such as halogen, hydroxy,
C
1-C
6-alkoxy, C
1-C
6-alkycarbonyloxy, phenoxy, C
1-C
6-alkylsulfonyloxy, C
1-C
6-haloalkylsulfonyloxy and arylsulfonyloxy; preferably for Cl, C
1-C
6-alkycarbonyloxy or phenoxy.
[0074] The acylation of the acylhydrazides of formula I, wherein R
4 is hydrogen is usually carried out at from 0°C to the boiling point of the reaction
mixture, preferably at from 0°C to 150°C, particularly preferably at from 20°C to
150°C optionally in an inert organic solvent optionally in the presence of a base.
[0075] Suitable acylation agents VIII are commercially available and are for example acetylchloride,
acetic anhydride, phenolacetate, propionylchloride, propionic anhydride, phenolpropionate,
butyrylchloride, butyric anhydride, phenolbutyrate, iso-butyrylchloride, iso-butyric
anhydride and phenolisobutyrate.
[0076] Suitable solvents are aliphatic hydrocarbons such as pentane, hexane, cyclohexane
and mixtures of C
5-C
8-alkanes, aromatic hydrocarbons such as tolene, o-, m- and p-xylene, halogenated hydrocarbons
such asdichloromethane, 1,2-dichloroethane, chloroform and chlorobenzene, ethers such
as diethyl ether, diisopropyl ether, tert.-butyl methylether, dioxane, anisole and
tetrahydrofuran, nitriles such as acetonitrile and propionitrile, alkoholes such as
methanol, ethanol, n-propanol, isopropanol, n-butanol and tert.-butanol, as well as
dimethylsulfoxide, dimethylformamide and N,N-dimethylacetamide or N-methylpyrrolidone.
Particular preference is given to tetrahydrofuran, acetonitrile and dimethylformamide.
It is also possible to use mixtures of the solvents mentioned.
[0077] Suitable bases are, in general Inorganic compounds such as alkali metal and alkaline
earth metal hydrides such as lithium hydride, sodium hydride, potassium hydride and
calcium hydride, alkali metal and alkaline earth metal carbonates such as lithium
carbonate, potassium carbonate and calcium carbonate, as well as alkali metal bicarbonates
such as sodium bicarbonate, and furthermore organic bases, such as tertiary amines
such as trimethylamine, triethylamine, diisopropylethylamine and N-methylpiperidine,
pyridine, substituted pyridines such as collidine, lutidine, N-methylmorpholine and
4-dimethylaminopyridine and also bicyclic amines. Particular preference is given to
triethylamine and potassium carbonate. The bases are generally employed in catalytic
amounts, however they can also be employed in equimolar amounts, in excess or, if
appropriate, be used as solvent.
[0078] In general, the educts are employed in equimolar amounts. It might be advantageous
to employ an excess of acylating agent VIII.
[0079] Work up can be carried out in a known manner.
[0080] The cyclyl-1,2-dinitriles of formula II required for the preparation of acylhydrazides
of formula I are known from the literature and can be prepared in accordance with
the literature cited and/or are commercially available: transformation of substituted
phtalicacids or heterocyclyl-1,2-diacids to the diamides and subsequent dehydration
(
J. of Het. Chem. 1995, 32(2), 495-498); substitution of the nitro or halogen-group of 3- or 4-nitro- or halogen-phthalo-
or heterocyclyl-1,2-dinitrile by a nuclephile (
Eur. J. of Org. Chem. 2000 (8), 1603-1607); transition-catalyzed coupling of a halogen- or sulfonyloxysubstituted benzo- or
heterocyclyl-1,2-dinitrile with a carbon-nucleophile (
Can. J. of Chem. 1995, 73(3), 435-443); nucleophilic substitution of a leaving group on an aromatic ring by one or two
cyanides (
J. of Het. Chem. 1991 28(5), 1357-63); alkylation of a hydroxyl-, amino- or thio-substituted benzo- or heterocyclyl-1,2-dinitrile
(
Bull. of the Chem. Soc. of Japan 1997, 70(11), 2693-2698).
[0083] The 3-imino-3H-isoindol-1-ylamines of formula V mentioned above are novel compounds
and suitable intermediates for the preparation of the acylhydrazides of formula I
according to the present invention.
[0084] Therefore the present invention also provides novel 3-imino-3H-isoindol-1-ylamines
of formula V

wherein R
2 and R
3 correspond, either independently of one another or in combination with one another,
to those of the variables of R
2 and R
3 of the acylhydrazides of formula I as defined herein.
[0085] With respect to the variables R
2 and R
3, the particularly preferred embodiments of the intermediate compounds V correspond,
either independently of one another or in combination with one another, to those of
the variables of R
2 and R
3 of formula I as defined herein.
[0086] Special preference is given to the 3-imino-3H-isoindol-1-ylamines of formula V.A,
which correspond to 3-imino-3H-isoindol-1-ylamines of formula V, wherein in case R
2 and R
3 together with the carbon atoms (a) and (b) to which they are attached form a six-membered
monocyclic cycle, preferably the cycle B1, said six-membered monocyclic cycle is partially
or fully halogenated and/or is substituted by one to three substituents selected from
the group as defined herein.
[0087] With regard to the preferred embodiments of the 3-imino-3H-isoindol-1-ylamines of
formula V.A the preferred embodiments mentioned herein with regard to the acylhydrazides
of formula I and the 3-imino-3H-isoindol-1-ylamines of formula V are fully applicable.
[0088] The 3-hydrazono-3H-isoindol-1-ylamines of formula VI mentioned above are novel compounds
and suitable intermediates for the preparation of acylhydrazides of formula I and
IA according to the present invention.
[0089] Therefore the present invention also provides novel 3-hydrazono-3H-isoindol-1-ylamines
of formula VI

wherein R
2 and R
3 correspond, either independently of one another or in combination with one another,
to those of the variables of R
2 and R
3 of the acylhydrazides of formula I as defined herein.
[0090] With respect to the variables R
2 and R
3, the particularly preferred embodiments of the intermediate compounds VI correspond,
either independently of one another or in combination with one another, to those of
the variables of R
2 and R
3 of formula I as defined herein.
[0091] Special preference is given to the 3-hydrazono-3H-isoindol-1-ylamines of formula
VI.A, which correspond to 3-hydrazono-3H-isoindol-1-ylamines of formula VI, wherein
in case R
2 and R
3 together with the carbon atoms (a) and (b) to which they are attached form a six-membered
monocyclic cycle, preferably the cycle B1, said six-membered monocyclic cycle is partially
or fully halogenated and/or is substituted by one to three substituents selected from
the group as defined herein.
[0092] With regard to the preferred embodiments of the 3-hydrazono-3H-isoindol-1-ylamines
of formula VI.A the preferred embodiments mentioned herein with regard to the acylhydrazides
of formula I and the 3-hydrazono-3H-isoindol-1-ylamines of formula VI are fully applicable.
[0093] The acylhydrazides of formula I are suitable as herbicides. They are suitable as
such or as an appropriately formulated composition (herbicidal composition). As used
in this application, the terms "formulated composition" and "herbicidal composition"
are synonyms. The herbicidal compositions comprising the acylhydrazides of formula
I control vegetation on non-crop areas very efficiently, especially at high rates
of application. They act against broad-leaved weeds and grass weeds in crops such
as wheat, rice, maize, soya and cotton without causing any significant damage to the
crop plants. This effect is mainly observed at low rates of application.
[0094] Depending on the application method in question, the acylhydrazides of formula I
or compositions comprising them can additionally be employed in a further number of
crop plants for eliminating undesirable plants. Examples of suitable crops are the
following: Allium cepa, Ananas comosus, Arachis hypogaea, Asparagus officinalis, Avena
sativa, Beta vulgaris spec. altissima, Beta vulgaris spec. rapa, Brassica napus var.
napus, Brassica napus var. napobrassica, Brassica rapa var. silvestris, Brassica oleracea,
Brassica nigra, Camellia sinensis, Carthamus tinctorius, Carya illinoinensis, Citrus
limon, Citrus sinensis, Coffea arabica (Coffea canephora, Coffea liberica), Cucumis
sativus, Cynodon dactylon, Daucus carota, Elaeis guineensis, Fragaria vesca, Glycine
max, Gossypium hirsutum, (Gossypium arboreum, Gossypium herbaceum, Gossypium vitifolium),
Helianthus annuus, Hevea brasiliensis, Hordeum vulgare, Humulus lupulus, lpomoea batatas,
Juglans regia, Lens culinaris, Linum usitatissimum, Lycopersicon lycopersicum, Malus
spec., Manihot esculenta, Medicago sativa, Musa spec., Nicotiana tabacum (N.rustica),
Olea europaea, Oryza sativa, Phaseolus lunatus, Phaseolus vulgaris, Picea abies, Pinus
spec., Pistacia vera, Pisum sativum, Prunus avium, Prunus persica, Pyrus communis,
Prunus armeniaca, Prunus cerasus, Prunus dulcis and Prunus domestica, Ribes sylvestre,
Ricinus communis, Saccharum officinarum, Secale cereale, Sinapis alba, Solanum tuberosum,
Sorghum bicolor (s. vulgare), Theobroma cacao, Trifolium pratense, Triticum aestivum,
Triticale, Triticum durum, Vicia faba, Vitis vinifera and Zea mays.
[0095] Preferred crops are the following: Arachis hypogaea, Beta vulgaris spec. altissima,
Brassica napus var. napus, Brassica oleracea, Citrus limon, Citrus sinensis, Coffea
arabica (Coffea canephora, Coffea liberica), Cynodon dactylon, Glycine max, Gossypium
hirsutum, (Gossypium arboreum, Gossypium herbaceum, Gossypium vitifolium), Helianthus
annuus, Hordeum vulgare, Juglans regia, Lens culinaris, Linum usitatissimum, Lycopersicon
lycopersicum, Malus spec., Medicago sativa, Nicotiana tabacum (N.rustica), Olea europaea,
Oryza sativa , Phaseolus lunatus, Phaseolus vulgaris, Pistacia vera, Pisum sativum,
Prunus dulcis, Saccharum officinarum, Secale cereale, Solanum tuberosum, Sorghum bicolor
(s. vulgare), Triticale, Triticum aestivum, Triticum durum, Vicia faba, Vitis vinifera
and Zea mays.
[0096] The acylhydrazides of formula I according to the invention can also be used in genetically
modified plants. The term "genetically modified plants" is to be understood as plants,
which genetic material has been modified by the use of recombinant DNA techniques
in a way that under natural circumstances it cannot readily be obtained by cross breeding,
mutations or natural recombination. Typically, one or more genes have been integrated
into the genetic material of a genetically modified plant in order to improve certain
properties of the plant. Such genetic modifications also include but are not limited
to targeted post-transtional modification of protein(s), oligo- or polypeptides e.
g. by glycosylation or polymer additions such as prenylated, acetylated or farnesylated
moieties or PEG moieties.
[0097] Plants that have been modified by breeding, mutagenesis or genetic engineering, e.g.
have been rendered tolerant to applications of specific classes of herbicides, such
as auxin herbicides such as dicamba or 2,4-D; bleacher herbicides such as hydroxyphenylpyruvate
dioxygenase (HPPD) inhibitors or phytoene desaturase (PDS) inhibitors; acetolactate
synthase (ALS) inhibitors such as sulfonyl ureas or imidazolinones; enolpyruvyl shikimate
3-phosphate synthase (EPSP) inhibitors such as glyphosate; glutamine synthetase (GS)
inhibitors such as glufosinate; protoporphyrinogen-IX oxidase inhibitors; lipid biosynthesis
inhibitors such as acetyl CoA carboxylase (ACCase) inhibitors; or oxynil (i. e. bromoxynil
or ioxynil) herbicides as a result of conventional methods of breeding or genetic
engineering; furthermore, plants have been made resistant to multiple classes of herbicides
through multiple genetic modifications, such as resistance to both glyphosate and
glufosinate or to both glyphosate and a herbicide from another class such as ALS inhibitors,
HPPD inhibitors, auxin herbicides, or ACCase inhibitors. These herbicide resistance
technologies are, for example, described in
Pest Management Science 61, 2005, 246;
61, 2005, 258;
61, 2005, 277;
61, 2005, 269;
61, 2005, 286;
64, 2008, 326;
64, 2008, 332;
Weed Science 57, 2009, 108;
Australian Journal of Agricultural Research 58, 2007, 708;
Science 316, 2007, 1185; and references quoted therein. Several cultivated plants have been rendered tolerant
to herbicides by conventional methods of breeding (mutagenesis), e. g. Clearfield
® summer rape (Canola, BASF SE, Germany) being tolerant to imidazolinones, e. g. imazamox,
or ExpressSun® sunflowers (DuPont, USA) being tolerant to sulfonyl ureas, e. g. tribenuron.
Genetic engineering methods have been used to render cultivated plants such as soybean,
cotton, corn, beets and rape, tolerant to herbicides such as glyphosate, imidazolinones
and glufosinate, some of which are under development or commercially available under
the brands or trade names RoundupReady
® (glyphosate tolerant, Monsanto, USA), Cultivance® (imidazolinone tolerant, BASF SE,
Germany) and LibertyLink
® (glufosinate tolerant, Bayer CropScience, Germany).
[0098] Furthermore, plants are also covered that are by the use of recombinant DNA techniques
capable to synthesize one or more insecticidal proteins, especially those known from
the bacterial genus Bacillus, particularly from Bacillus thuringiensis, such as ä-endotoxins,
e. g. CryIA(b), CryIA(c), CryIF, CryIF(a2), CryIIA(b), CryIIIA, CryIIIB(b1) or Cry9c;
vegetative insecticidal proteins (VIP), e. g. VIP1, VIP2, VIP3 orVIP3A; insecticidal
proteins of bacteria colonizing nematodes, e. g. Photorhabdus spp. or Xenorhabdus
spp.; toxins produced by animals, such as scorpion toxins, arachnid toxins, wasp toxins,
or other insect-specific neurotoxins; toxins produced by fungi, such Streptomycetes
toxins, plant lectins, such as pea or barley lectins; agglutinins; proteinase inhibitors,
such as trypsin inhibitors, serine protease inhibitors, patatin, cystatin or papain
inhibitors; ribosome-inactivating proteins (RIP), such as ricin, maize-RIP, abrin,
luffin, saporin or bryodin; steroid metabolism enzymes, such as 3-hydroxy-steroid
oxidase, ecdysteroid-IDP-glycosyl-transferase, cholesterol oxidases, ecdysone inhibitors
or HMG-CoA-reductase; ion channel blockers, such as blockers of sodium or calcium
channels; juvenile hormone esterase; diuretic hormone receptors (helicokinin receptors);
stilben synthase, bibenzyl synthase, chitinases or glucanases. In the context of the
present invention these insecticidal proteins or toxins are to be under-stood expressly
also as pre-toxins, hybrid proteins, truncated or otherwise modified proteins. Hybrid
proteins are characterized by a new combination of protein domains, (see, e. g.
WO 02/015701). Further examples of such toxins or genetically modified plants capable of synthesizing
such toxins are dis-closed, e. g., in
EP-A 374 753,
WO 93/007278,
WO 95/34656,
EP-A 427 529,
EP-A 451 878,
WO 03/18810 und
WO 03/52073. The methods for producing such genetically modified plants are generally known to
the person skilled in the art and are described, e. g. in the publications mentioned
above. These insecticidal proteins contained in the genetically modified plants impart
to the plants producing these proteins tolerance to harmful pests from all taxonomic
groups of athropods, especially to beetles (Coeloptera), two-winged insects (Diptera),
and moths (Lepidoptera) and to nematodes (Nematoda). Genetically modified plants capable
to synthesize one or more insecticidal proteins are, e. g., described in the publications
mentioned above, and some of which are commercially available such as YieldGard
® (corn cultivars producing the Cry1Ab toxin), YieldGard
® Plus (corn cultivars producing Cry1Ab and Cry3Bb1 toxins), Starlink
® (corn cultivars producing the Cry9c toxin), Herculex
® RW (corn cultivars producing Cry34Ab1, Cry35Ab1 and the enzyme Phosphinothricin-N-Acetyltransferase
[PAT]); NuCOTN
® 33B (cotton cultivars producing the Cry1Ac toxin), Bollgard
® I (cotton cultivars producing the Cry1Ac toxin), Bollgard
® II (cotton cultivars producing Cry1Ac and Cry2Ab2 toxins); VIPCOT
® (cotton cultivars producing a VIP-toxin); NewLeaf
® (potato cultivars producing the Cry3A toxin); Bt-Xtra
®, NatureGard
®, KnockOut
®, BiteGard
®, Protecta
®, Bt11 (e. g. Agrisure
® CB) and Bt176 from Syngenta Seeds SAS, France, (corn cultivars producing the Cry1Ab
toxin and PAT enyzme), MIR604 from Syngenta Seeds SAS, France (corn cultivars producing
a modified version of the Cry3A toxin, c.f.
WO 03/018810), MON 863 from Monsanto Europe S.A., Belgium (corn cultivars produ-cing the Cry3Bb1
toxin), IPC 531 from Monsanto Europe S.A., Belgium (cotton cultivars producing a modified
version of the Cry1Ac toxin) and 1507 from Pioneer Overseas Corporation, Belgium (corn
cultivars producing the Cry1 F toxin and PAT enzyme).
[0099] Furthermore, plants are also covered that are by the use of recombinant DNA techniques
capable to synthesize one or more proteins to in-crease the resistance or tolerance
of those plants to bacterial, viral or fungal pathogens. Examples of such proteins
are the so-called "pathogenesis-related proteins" (PR proteins, see, e.g.
EP-A 392 225), plant disease resistance genes (e. g. potato culti-vars, which express resistance
genes acting against Phytophthora infestans derived from the mexican wild potato Solanum
bulbocastanum) or T4-lyso-zym (e.g. potato cultivars capable of synthesizing these
proteins with increased resistance against bacteria such as Erwinia amylvora). The
methods for producing such genetically modi-fied plants are generally known to the
person skilled in the art and are described, e.g. in the publications mentioned above.
[0100] Furthermore, plants are also covered that are by the use of recombinant DNA techniques
capable to synthesize one or more proteins to increase the productivity (e.g. bio
mass production, grain yield, starch content, oil content or protein content), tolerance
to drought, salinity or other growth-limiting environ-mental factors or tolerance
to pests and fungal, bacterial or viral pathogens of those plants.
[0101] Furthermore, plants are also covered that contain by the use of recombinant DNA techniques
a modified amount of substances of content or new substances of content, specifically
to improve human or animal nutrition, e. g. oil crops that produce healthpromoting
long-chain omega-3 fatty acids or unsaturated omega-9 fatty acids (e. g. Nexera
® rape, DOW Agro Sciences, Canada).
[0102] Furthermore, plants are also covered that contain by the use of recombinant DNA techniques
a modified amount of substances of content or new substances of content, specifically
to improve raw material production, e.g. potatoes that produce increased amounts of
amylopectin (e.g. Amflora
® potato, BASF SE, Germany).
[0103] The acylhydrazides of formula I, or the herbicidal compositions comprising the acylhydrazides
of formula I, can be used, for example, in the form of ready-to-spray aqueous solutions,
powders, suspensions, also highly concentrated aqueous, oily or other suspensions
or dispersions, emulsions, oil dispersions, pastes, dusts, materials for broadcasting,
or granules, by means of spraying, atomizing, dusting, spreading, watering or treatment
of the seed or mixing with the seed. The use forms depend on the intended purpose;
in any case, they should ensure the finest possible distribution of the active ingredients
according to the invention.
[0104] The herbicidal compositions comprise an herbicidal effective amount of at least one
acylhydrazides of the formula I and auxiliaries which are customary for the formulation
of crop protection agents.
[0105] Examples of auxiliaries customary for the formulation of crop protection agents are
inert auxiliaries, solid carriers, surfactants (such as dispersants, protective colloids,
emulsifiers, wetting agents and tackifiers), organic and inorganic thickeners, bactericides,
antifreeze agents, antifoams, optionally colorants and, for seed formulations, adhesives.
[0106] The person skilled in the art is sufficiently familiar with the recipes for such
formulations.
[0107] Examples of thickeners (i.e. compounds which impart to the formulation modified flow
properties, i.e. high viscosity in the state of rest and low viscosity in motion)
are polysaccharides, such as xanthan gum (Kelzan® from Kelco), Rhodopol® 23 (Rhone
Poulenc) or Veegum® (from R.T. Vanderbilt), and also organic and inorganic sheet minerals,
such as Attaclay® (from Engelhardt).
[0108] Examples of antifoams are silicone emulsions (such as, for example, Silikon
® SRE, Wacker or Rhodorsil® from Rhodia), long-chain alcohols, fatty acids, salts of
fatty acids, organofluorine compounds and mixtures thereof.
[0109] Bactericides can be added for stabilizing the aqueous herbicidal formulations. Examples
of bactericides are bactericides based on diclorophen and benzyl alcohol hemiformal
(Proxel® from ICI or Acticide® RS from Thor Chemie and Kathon® MK from Rohm & Haas),
and also isothiazolinone derivates, such as alkylisothiazolinones and benzisothiazolinones
(Acticide MBS from Thor Chemie).
[0110] Examples of antifreeze agents are ethylene glycol, propylene glycol, urea or glycerol.
[0111] Examples of colorants are both sparingly water-soluble pigments and water-soluble
dyes. Examples which may be mentioned are the dyes known under the names Rhodamin
B, C.I. Pigment Red 112 and C.I. Solvent Red 1, and also pigment blue 15:4, pigment
blue 15:3, pigment blue 15:2, pigment blue 15:1, pigment blue 80, pigment yellow 1,
pigment yellow 13, pigment red 112, pigment red 48:2, pigment red 48:1, pigment red
57:1, pigment red 53:1, pigment orange 43, pigment orange 34, pigment orange 5, pigment
green 36, pigment green 7, pigment white 6, pigment brown 25, basic violet 10, basic
violet 49, acid red 51, acid red 52, acid red 14, acid blue 9, acid yellow 23, basic
red 10, basic red 108.
[0112] Examples of adhesives are polyvinylpyrrolidone, polyvinyl acetate, polyvinyl alcohol
and tylose.
[0113] Suitable inert auxiliaries are, for example, the following: mineral oil fractions
of medium to high boiling point, such as kerosene and diesel oil; furthermore coal
tar oils and oils of vegetable or animal origin, aliphatic, cyclic and aromatic hydrocarbons,
for example paraffin, tetrahydronaphthalene, alkylated naphthalenes and their derivatives,
alkylated benzenes and their derivatives, alcohols such as methanol, ethanol, propanol,
butanol and cyclohexanol, ketones such as cyclohexanone or strongly polar solvents,
for example amines such as N-methylpyrrolidone, and water.
[0114] Suitable carriers include liquid and solid carriers. Liquid carriers include e.g.
non-aqeuos solvents such as cyclic and aromatic hydrocarbons, e.g. paraffins, tetrahydronaphthalene,
alkylated naphthalenes and their derivatives, alkylated benzenes and their derivatives,
alcohols such as methanol, ethanol, propanol, butanol and cyclohexanol, ketones such
as cyclohexanone, strongly polar solvents, e.g. amines such as N-methylpyrrolidone,
and water as well as mixtures thereof. Solid carriers include e.g. mineral earths
such as silicas, silica gels, silicates, talc, kaolin, limestone, lime, chalk, bole,
loess, clay, dolomite, diatomaceous earth, calcium sulfate, magnesium sulfate and
magnesium oxide, ground synthetic materials, fertilizers such as ammonium sulfate,
ammonium phosphate, ammonium nitrate and ureas, and products of vegetable origin,
such as cereal meal, tree bark meal, wood meal and nutshell meal, cellulose powders,
or other solid carriers.
[0115] Suitable surfactants (adjuvants, wetting agents, tackifiers, dispersants and also
emulsifiers) are the alkali metal salts, alkaline earth metal salts and ammonium salts
of aromatic sulfonic acids, for example lignosulfonic acids (e.g. Borrespers-types,
Borregaard), phenolsulfonic acids, naphthalenesulfonic acids (Morwet types, Akzo Nobel)
and dibutylnaphthalenesulfonic acid (Nekal types, BASF AG), and of fatty acids, alkyl-
and alkylarylsulfonates, alkyl sulfates, lauryl ether sulfates and fatty alcohol sulfates,
and salts of sulfated hexa-, hepta- and octadecanols, and also of fatty alcohol glycol
ethers, condensates of sulfonated naphthalene and its derivatives with formaldehyde,
condensates of naphthalene or of the naphthalenesulfonic acids with phenol and formaldehyde,
polyoxyethylene octylphenol ether, ethoxylated isooctyl-, octyl- or nonylphenol, alkylphenyl
or tributylphenyl polyglycol ether, alkylaryl polyether alcohols, isotridecyl alcohol,
fatty alcohol/ethylene oxide condensates, ethoxylated castor oil, polyoxyethylene
alkyl ethers or polyoxypropylene alkyl ethers, lauryl alcohol polyglycol ether acetate,
sorbitol esters, lignosulfite waste liquors and proteins, denaturated proteins, polysaccharides
(e.g. methylcellulose), hydrophobically modified starches, polyvinyl alcohol (Mowiol
types Clariant), polycarboxylates (BASF AG, Sokalan types), polyalkoxylates, polyvinylamine
(BASF AG, Lupamine types), polyethyleneimine (BASF AG, Lupasol types), polyvinylpyrrolidone
and copolymers thereof.
[0116] Powders, materials for broadcasting and dusts can be prepared by mixing or concomitant
grinding the active ingredients together with a solid carrier.
[0117] Granules, for example coated granules, impregnated granules and homogeneous granules,
can be prepared by binding the active ingredients to solid carriers.
[0118] Aqueous use forms can be prepared from emulsion concentrates, suspensions, pastes,
wettable powders or water-dispersible granules by adding water.
[0119] To prepare emulsions, pastes or oil dispersions, the acylhydrazides of the formula
I, either as such or dissolved in an oil or solvent, can be homogenized in water by
means of a wetting agent, tackifier, dispersant or emulsifier. Alternatively, it is
also possible to prepare concentrates comprising active compound, wetting agent, tackifier,
dispersant or emulsifier and, if desired, solvent or oil, which are suitable for dilution
with water.
[0120] The concentrations of the acylhydrazides of the formula I in the ready-to-use preparations
(formulations) can be varied within wide ranges. In general, the formulations comprise
approximately from 0.001 to 98% by weight, preferably 0.01 to 95% by weight of at
least one active ingredient. The active ingredients are employed in a purity of from
90% to 100%, preferably 95% to 100% (according to NMR spectrum).
[0121] In the formulation of the acylhydrazides of formula I according to the present invention
the active ingredients, e.g. the acylhydrazides of formula I, are present in suspended,
emulsified or dissolved form. The formulation according to the invention can be in
the form of aqueous solutions, powders, suspensions, also highly-concentrated aqueous,
oily or other suspensions or dispersions, aqueous emulsions, aqueous microemulsions,
aqueous suspo-emulsions, oil dispersions, pastes, dusts, materials for spreading or
granules.
[0122] The acylhydrazides of formula I according to the present invention can, for example,
be formulated as follows:
- 1. Products for dilution with water
- A Water-soluble concentrates 10 parts by weight of active compound are dissolved in
90 parts by weight of water or a water-soluble solvent. As an alternative, wetters
or other adjuvants are added. The active compound dissolves upon dilution with water.
This gives a formulation with an active compound content of 10% by weight.
- B Dispersible concentrates 20 parts by weight of active compound are dissolved in
70 parts by weight of cyclohexanone with addition of 10 parts by weight of a dispersant,
for example polyvinylpyrrolidone. Dilution with water gives a dispersion. The active
compound content is 20% by weight.
- C Emulsifiable concentrates 15 parts by weight of active compound are dissolved in
75 parts by weight of an organic solvent (eg. alkylaromatics) with addition of calcium
dodecylbenzenesulfonate and castor oil ethoxylate (in each case 5 parts by weight).
Dilution with water gives an emulsion. The formulation has an active compound content
of 15% by weight.
- D Emulsions 25 parts by weight of active compound are dissolved in 35 parts by weight
of an organic solvent (eg. alkylaromatics) with addition of calcium dodecylbenzenesulfonate
and castor oil ethoxylate (in each case 5 parts by weight). This mixture is introduced
into 30 parts by weight of water by means of an emulsifier (Ultraturrax) and made
into a homogeneous emulsion. Dilution with water gives an emulsion. The formulation
has an active compound content of 25% by weight.
- E Suspensions In an agitated ball mill, 20 parts by weight of active compound are
comminuted with addition of 10 parts by weight of dispersants and wetters and 70 parts
by weight of water or an organic solvent to give a fine active compound suspension.
Dilution with water gives a stable suspension of the active compound. The active compound
content in the formulation is 20% by weight.
- F Water-dispersible granules and water-soluble granules 50 parts by weight of active
compound are ground finely with addition of 50 parts by weight of dispersants and
wetters and made into water-dispersible or water-soluble granules by means of technical
appliances (for example extrusion, spray tower, fluidized bed). Dilution with water
gives a stable dispersion or solution of the active compound. The formulation has
an active compound content of 50% by weight.
- G Water-dispersible powders and water-soluble powders 75 parts by weight of active
compound are ground in a rotor-stator mill with addition of 25 parts by weight of
dispersants, wetters and silica gel. Dilution with water gives a stable dispersion
or solution of the active compound. The active compound content of the formulation
is 75% by weight.
- H Gel formulations In a ball mill, 20 parts by weight of active compound, 10 parts
by weight of dispersant, 1 part by weight of gelling agent and 70 parts by weight
of water or of an organic solvent are mixed to give a fine suspension. Dilution with
water gives a stable suspension with active compound content of 20% by weight.
- 2. Products to be applied undiluted
I Dusts 5 parts by weight of active compound are ground finely and mixed intimately
with 95 parts by weight of finely divided kaolin. This gives a dusting powder with
an active compound content of 5% by weight.
J Granules (GR, FG, GG, MG) 0.5 parts by weight of active compound are ground finely
and associated with 99.5 parts by weight of carriers. Current methods here are extrusion,
spray-drying or the fluidized bed. This gives granules to be applied undiluted with
an active compound content of 0.5% by weight.
K ULV solutions (UL) 10 parts by weight of active compound are dissolved in 90 parts
by weight of an organic solvent, for example xylene. This gives a product to be applied
undiluted with an active compound content of 10% by weight.
[0123] Aqueous use forms can be prepared from emulsion concentrates, suspensions, pastes,
wettable powders or water-dispersible granules by adding water.
[0124] Application can be done before, during and/or after, preferably during and/or after,
the emergence of the undesirable plants.
[0125] The acylhydrazides of the formula I or the herbicidal compositions comprising them
can be applied pre-, post-emergence or pre-plant, or together with the seed of a crop
plant. It is also possible to apply the herbicidal composition or active compounds
by applying seed, pretreated with the herbicidal compositions or active compounds,
of a crop plant. If the active ingredients are less well tolerated by certain crop
plants, application techniques may be used in which the herbicidal compositions are
sprayed, with the aid of the spraying equipment, in such a way that as far as possible
they do not come into contact with the leaves of the sensitive crop plants, while
the active ingredients reach the leaves of undesirable plants growing underneath,
or the bare soil surface (post-directed, lay-by).
[0126] In a further embodiment, the acylhydrazides of the formula I or the herbicidal compositions
can be applied by treating seed. The treatment of seeds comprises essentially all
procedures familiar to the person skilled in the art (seed dressing, seed coating,
seed dusting, seed soaking, seed film coating, seed multilayer coating, seed encrusting,
seed dripping and seed pelleting) based on the acylhydrazides of the formula I according
to the invention or the compositions prepared therefrom. Here, the herbicidal compositions
can be applied diluted or undiluted.
[0127] The term "seed" comprises seed of all types, such as, for example, corns, seeds,
fruits, tubers, seedlings and similar forms. Here, preferably, the term seed describes
corns and seeds. The seed used can be seed of the useful plants mentioned above, but
also the seed of transgenic plants or plants obtained by customary breeding methods.
[0128] The rates of application of the active acylhydrazide of formula I according to the
present invention (total amount of acylhydrazide of formula I) are from 0,1 g/ha to
3000 g/ha, preferably 10 g/ha to 1000 g/ha of active substance (a.s.), depending on
the control target, the season, the target plants and the growth stage.
[0129] In another preferred embodiment of the invention, the application rates of the acylhydrazides
of formula I are in the range from 0.1 g/ha to 5000 g/ha and preferably in the range
from 1 g/ha to 2500 g/ha or from 5 g/ha to 2000 g/ha of active substance (a.s.).
[0130] In another preferred embodiment of the invention, the application rate of the acylhydrazide
of formula I is 0.1 to 1000 g/ha, preferably1 to 750 g/ha, more preferably 5 to 500
g/ha, of active substance.
[0131] To treat the seed, the acylhydrazides of formula I are generally employed in amounts
of from 0.001 to 10 kg per 100 kg of seed.
[0132] To widen the spectrum of action and to achieve synergistic effects, the acylhydrazides
of the formula I may be mixed with a large number of representatives of other herbicidal
or growth-regulating active ingredient groups and then applied concomitantly. Suitable
components for mixtures are, for example, 1,2,4-thiadiazoles, 1,3,4-thiadiazoles,
amides, aminophosphoric acid and its derivatives, aminotriazoles, anilides, (het)aryloxyalkanoic
acids and their derivatives, benzoic acid and its derivatives, benzothiadiazinones,
2-aroyl-1,3-cyclohexanediones, 2-hetaroyl-1,3-cyclohexanediones, hetaryl aryl ketones,
benzylisoxazolidinones, meta-CF
3-phenyl derivatives, carbamates, quinolinecarboxylic acid and its derivatives, chloroacetanilides,
cyclohexenone oxime ether derivatives, diazines, dichloropropionic acid and its derivatives,
dihydrobenzofurans, dihydrofuran-3-ones, dinitroanilines, dinitrophenols, diphenyl
ethers, dipyridyls, halocarboxylic acids and their derivatives, ureas, 3-phenyluracils,
imidazoles, imidazolinones, N-phenyl-3,4,5,6-tetrahydrophthalimides, oxadiazoles,
oxiranes, phenols, aryloxy- and hetaryloxyphenoxypropionic esters, phenylacetic acid
and its derivatives, 2-phenylpropionic acid and its derivatives, pyrazoles, phenylpyrazoles,
pyridazines, pyridinecarboxylic acid and its derivatives, pyrimidyl ethers, sulfonamides,
sulfonylureas, triazines, triazinones, triazolinones, triazolecarboxamides, uracils,
phenyl pyrazolines and isoxazolines and derivatives thereof.
[0133] It may furthermore be beneficial to apply the acylhydrazides of the formula I alone
or in combination with other herbicides, or else in the form of a mixture with other
crop protection agents, for example together with agents for controlling pests or
phytopathogenic fungi or bacteria. Also of interest is the miscibility with mineral
salt solutions, which are employed for treating nutritional and trace element deficiencies.
Other additives such as non-phytotoxic oils and oil concentrates may also be added.
[0134] Moreover, it may be useful to apply the acylhydrazides of the formula I in combination
with safeners. Safeners are chemical compounds which prevent or reduce damage on useful
plants without having a major impact on the herbicidal action of the ... of the formula
I towards unwanted plants. They can be applied either before sowings (e.g. on seed
treatments, shoots or seedlings) or in the pre-emergence application or post-emergence
application of the useful plant. The safeners and the acylhdrazides of the formula
I can be applied simultaneously or in succession.
[0135] Suitable safeners are e.g. (quinolin-8-oxy)acetic acids, 1-phenyl-5-haloalkyl-1 H-1,2,4-triazol-3-carboxylic
acids, 1-phenyl-4,5-dihydro-5-alkyl-1 H-pyrazol-3,5-dicarboxylic acids, 4,5-dihydro-5,5-diaryl-3-isoxazol
carboxylic acids, dichloroacetamides, alphaoximinophenylacetonitriles, acetophenonoximes,
4,6-dihalo-2-phenylpyrimidines, N-[[4-(aminocarbonyl)phenyl]sulfonyl]-2-benzoic amides,
1,8-naphthalic anhydride, 2-halo-4-(haloalkyl)-5-thiazol carboxylic acids, phosphorthiolates
and N-alkyl-O-phenylcarbamates and their agriculturally acceptable salts and their
agriculturally acceptable derivatives such amides, esters, and thioesters, provided
they have an acid group.
[0136] The acylhydrazides of formula I according to the present invention can be used as
pharmaceutical active ingredients (medicaments), especially for treating or preventing
parasitic and/or bacterial infections in a subject.
[0137] The term "subject", as used in connection with the method of treating or preventing
parasitic and/or bacterial infections refers to a living animal, e.g. mammals and
birds, preferably mammals, most preferably humans; also preferably birds, also most
preferably poultry.
[0138] Parasitic and bacterial infections can occur in both, humans and animals.
[0139] Examples for parasitic infections are malaria, coccidiosis, toxoplasmosis, leishmaniasis
and trypanosomiasis (e.g. African Sleeping Sickness, South American Chagas Disease).
These parasitic infections are caused by parasitic Protozoa, e.g. of the genus Plasmodium
(e.g. the species P. falciparum, P. maliariae, P. ovale and P. vivax), Eimeria (e.g.
the species E. tenella and E. necatrix), Toxoplasma (e.g. the species T. gondii),
Leishmania (e.g. the species L. donovani) and Trypanosoma (e.g the species T. brucei
and T. cruzei). Plasmodium belongs to the order of Haemosprida, whereas Eimeria and
Toxoplasma belong both to the order of Eucoccidiorida. Haemosprida and Eucoccidiorida
both belong to the phylum Apicomplexa. Leishmania and Trypanosoma belong both to the
order of Trypanosomatida, which itself belongs to the phylum Euglenozoa. Aplicomplexa
and Euglenozoa are both examples for "parasitic Protozoa".
[0140] Examples for bacterial infections are tuberculosis, leprosy, mycetoma, listeriosis,
meningitis, botulism, tetanus, trachoma, urethritis, pelvic inflammatoric disease,
typhoid fever, paratyphoid fever and foodborne illness slmonellosis. These infections
are caused by bacteria, e.g. of the genus Mycobacterium (e.g the species M. leprae,
M. tuberculosis, M. ulceran), Streptomyces (e.g. the species S. sudanensis, S. somaliensis),
Listeria (e.g. the species L. monocytogenes), Clostridium (e.g. the species C. botulinum,
C. difficile, C. perfringens, C. tetani), Chlamydia (e.g. the species C. pneumoniae,
C. trachomatis) and Salmonella (e.g. the species S. bongori, S. enterica containing
the sub-subspecies S. typhi and S. typhimurium). Mycobacterium and Streptomyces both
belong to the order of Actinomycetales, whereas Listeria belongs to the order of Bacillaes,
Clostridium belongs to the order of Clostridiales, Chlamydia belongs to the order
of Chlamydiales and Salmonella belongs to the order of Enterobacteriales. Actinomycetales
of the phylum Actinobacteria as well as Bacillaes and Clostridiales, both of the phylum
Firmicutes, are examples for Gram-positive bacteria. Chlamydiales (phylum Clamydiae)
and Enterobacteriales (phylum Gamma Probacteria) are both examples for Gram-negative
bacteria.
[0141] In one embodiment of the invention, the acylhydrazides of formula I are used as pharmaceutical
active ingredients for treating or preventing parasitic and/or bacterial infections
caused by parasitic Protozoa and/or Gram-positive bacteria.
[0142] In another embodiment of the invention, the acylhydrazides of formula I are used
as pharmaceutical active ingredients for treating or preventing parasitic infections
caused by parasitic Protozoa,
[0143] preferably caused by Apicomplexa and Englenozoa,
[0144] more preferably caused by Haemasporida, Eucoccidiorida and Trypanosomatida, particularly
preferred caused by Plasmodium, Eimeria, Toxoplasma, Leishmania and Trypanosoma, especially
preferred caused by Plasmodium, most preferably caused by P. falciparum and P. malariae.
[0145] In another embodiment of the invention, the acylhydrazides of formula I are used
as pharmaceutical active ingredients for treating or preventing parasitic infections
caused by Apicomplexa, preferably caused by Haemasporida and Eucoccidiorida, more
preferably caused by Plasmodium, Eimeria and Toxoplasma, particularly preferred caused
by P. falciparum, P. malariae, E. tenellae and T. gondii.
[0146] In another embodiment of the invention, the acylhydrazides of formula I are used
as pharmaceutical active ingredients for treating or preventing parasitic infections
caused by Englenozoa, more preferably caused by Trypanosomatida, particularly preferred
caused by Leishmania and Trypanosoma, especially preferred caused by L. donovani,
T. brucei and T. cruzei.
[0147] In another embodiment of the invention, the acylhydrazides of formula I are used
as pharmaceutical active ingredients for treating or preventing bacterial infections
caused by Actinobacteria, Firmicutes, Chlamydiae and Gamma Probacteria, preferably
caused by Actinomycetales, Bacillaes, Clostridiales, Chlamydiales and Enterocbacteriales,
more preferably caused by Mycobacterium, Streptomyces, Listeria, Clostridium, Chlamydia
and Salmonella particularly preferred caused by Mycobacterium, Streptomyces, Listeria
and Clostridium, especially preferred caused by Mycobacterium, Listeria and Clostridium.
[0148] In another embodiment of the invention, the acylhydrazides of formula I are used
as pharmaceutical active ingredients for treating or preventing bacterial infections
caused by Gram-positive bacteria, preferably caused by Actinobacteria and Firmicutes,
more preferably caused by Actinomycetales, Bacillaes and Clostridiales, particularly
preferred caused by Mycobacterium, Streptomyces, Listeria and Clostridium, especially
preferred caused by M. leprae, M. tuberculosis, L. monocytogenes, C. botulinum and
C. tetani; most preferably caused by M. leprae, M. tuberculosis, C. botulinum and
C. tetani.
[0149] In another embodiment of the invention, the acylhydrazides of formula I are used
as pharmaceutical active ingredients for treating or preventing bacterial infections
caused by Gram-negative bacteria, preferably caused by Chlamydiales and Enterobacteriales,
more preferably caused by Chlamydia and Salmonella, particularly preferred caused
by C. pneumoniae, C. trachomatis, S. bongori and S. enterica.
[0150] The term "pharmaceutically acceptable", as used in connection with the compounds
and compositions of the invention, refers to molecular entities and other ingredients
of such compositions that are physiologically tolerable and do not typically produce
untoward reactions when administered to a subject, preferably to a mammal (e.g. a
human). Preferably, the term "pharmaceutically acceptable" means approved by a regulatory
agency or listed in e.g. the U.S. Pharmacopeia for use in mammals and particularly
in humans.
[0151] Compounds of the present invention may be in the form of pharmaceutically acceptable
salts. "Pharmaceutically acceptable salts" refers to those salts which possess the
biological effectiveness and properties of the parent compound and which are not biologically
or otherwise undesirable. The nature of the salt is not critical, provided that it
is non-toxic and does not substantially interfere with the desired pharmacological
activity.
[0152] The term "therapeutically effective" applied to dose or amount refers to that quantity
of a compound or pharmaceutical composition that is sufficient to result in a desired
activity upon administration to a living animal body in need thereof.
[0153] For therapeutic use, salts of the acylhadrazides of formula I are those wherein the
counter-ion is pharmaceutically acceptable. However, salts of acids and bases, which
are non-pharmaceutically acceptable, may also find use, for example, in the preparation
and purification of pharmaceutically acceptable compounds.
[0154] All salts whether pharmaceutically acceptable or not are included within the ambit
of the present invention. The pharmaceutically acceptable salts as mentioned above
are meant to comprise the therapeutically active non-toxic salt forms, which the compounds
of formula I are able to form. The latter can conveniently be obtained by treating
the base form with such appropriate acids as inorganic acids, e.g. hydrohalic acids
such as hydrochloric, hydrobromic and the like; sulfuric acid; nitric acid; phosphoric
acid and the like; or organic acids such as acetic, propanoic, hydroxyacetic, 2-hydroxypropanoic,
oxopropanoic, oxalic, malonic, succinic, maleic, fumaric, malic, tartaric, 2-hydroxy-1,2,3-propanetricarboxylic,
methanesulfonic, ethanesulfonic, benzenesulfonic, 4-methylbenzenesulfonic, cyclohexanesulfonic,
2-hydroxybenzoic, 4-amino-2-hydroxybenzoic and the like acids. Conversely, the salt
form can be converted by treatment with alkali into the free base form.
[0155] The active ingredients of formula I of the invention, together with at least one
auxiliary customary for formulating pharmaceutical, e.g. one or more conventional
adjuvants, carriers, or diluents, may be placed into the form of pharmaceutical compositions
and unit dosages thereof.
[0156] In such form the active ingredients of formula I may be employed as solid, such as
coated or uncoated tablets or filled capsules, or liquid, such as solutions, suspensions,
emulsions, elixirs, or capsules filled with the same, all for oral use; in the form
of suppositories or capsules for rectal administration or in the form of sterile injectable
solutions for parenteral, including intravenous or subcutaneous, use.
[0157] Such pharmaceutical compositions and unit dosage forms thereof may comprise conventional
or new ingredients in conventional or special proportions, with or without additional
active compounds or principles, and such unit dosage forms may contain any suitable
effective amount of the active ingredient commensurate with the intended daily dosage
range to be employed. Tablets containing from 0.1 to 600 milligrams of active ingredient,
more preferred from 0.5 to 500 milligrams per tablet, are suitable representative
unit dosage forms.
[0158] The term "carrier" applied to pharmaceutical compositions of the invention refers
to a diluent, excipient or vehicle with which an active compound is administered.
Such pharmaceutical carriers can be sterile liquids, such as water, saline solutions,
aqueous dextrose solutions, aqueous glycerol solutions, and oils, including those
of petroleum, animal, vegetable or synthetic origin, such as peanut oil, soybean oil,
mineral oil, sesame oil and the like.
A. R. Gennaro, 20th Edition, describes suitable pharmaceutical carriers in "Remington:
The Science and Practice of Pharmacy".
[0159] Due to their high degree of activity, the high metabolic stability and their low
toxicity, together presenting favorable therapeutic index, the active compounds of
formula I of the invention may be administered to a subject, e.g., a living animal
(including a human) body in need thereof, for the treatment, alleviation, or amelioration,
palliation, or elimination of an indication or condition which is susceptible thereto,
or representatively of an indication or condition set forth elsewhere in this application,
preferably concurrently, simultaneously, or together with one or more pharmaceutically-acceptable
excipients, carriers or diluents.
[0160] Suitable dosage ranges are 0.1 to 1000 milligrams daily, preferably 1 to 500 milligrams
daily, and especially 5 to 500 milligrams daily, depending as usual upon the exact
mode of administration, form in which administered, the indication toward which the
administration is directed, the subject involved and the body weight of the subject
involved, and the preference and experience of the physician or veterinarian in charge.
[0161] The acylhydrazides of formula I can be applied in the form of a pharmaceutical composition
whether by oral, rectal, or parental (including intravenous and subcutaneous) or in
some cases even topical route, in an effective amount.
[0162] The active compound of formula I of the present invention may be administered orally,
topically, parenterally, or mucosally (e.g., buccally, by inhalation, or rectally)
in dosage unit formulations containing conventional non-toxic pharmaceutically acceptable
carriers. It is usually desirable to use the oral route. The active agents may be
administered orally in the form of a capsule, a tablet, or the like (see
Remington: The Science and Practice of Pharmacy, 20th Edition). The orally administered medicaments may be administered in the form of a time-controlled
release vehicle, including diffusion-controlled systems, osmotic devices, dissolution-controlled
matrices, and erodible/degradable matrices.
[0163] For oral administration in the form of a tablet or capsule, the active component
of formula I may be combined with a non-toxic, pharmaceutically acceptable excipients
such as binding agents (e.g., pregelatinized maize starch, polyvinylpyrrolidone or
hydroxypropyl methylcellulose); fillers (e.g., lactose, sucrose, glucose, mannitol,
sorbitol and other reducing and non-reducing sugars, microcrystalline cellulose, calcium
sulfate, or calcium hydrogen phosphate); lubricants (e.g., magnesium stearate, talc,
or silica, steric acid, sodium stearyl fumarate, glyceryl behenate, calcium stearate,
and the like); disintegrants (e.g., potato starch or sodium starch glycolate); or
wetting agents (e.g., sodium lauryl sulphate), coloring and flavoring agents, gelatin,
sweeteners, natural and synthetic gums (such as acacia, tragacanth or alginates),
buffer salts, carboxymethylcellulose, polyethyleneglycol, waxes, and the like. For
oral administration in liquid form, the drug components may be combined with non-toxic,
pharmaceutically acceptable inert carriers (e.g., ethanol, glycerol, water), suspending
agents (e.g., sorbitol syrup, cellulose derivatives or hydrogenated edible fats),
emulsifying agents (e.g., lecithin or acacia), non-aqueous vehicles (e.g., almond
oil, oily esters, ethyl alcohol or fractionated vegetable oils), preservatives (e.g.,
methyl or propyl-p-hydroxybenzoates or sorbic acid), and the like. Stabilizing agents
such as antioxidants (BHA, BHT, propyl gallate, sodium ascorbate, citric acid) may
also be added to stabilize the dosage forms.
[0164] The tablets containing as active compound a compound of formula I may be coated by
methods well known in the art. The compositions of the invention containing as active
compound a compound of formula I may be also introduced in beads, microspheres or
microcapsules, e.g., fabricated from polyglycolic acid/lactic acid (PGLA). Liquid
preparations for oral administration may take the form of, for example, solutions,
syrups, emulsions or suspensions, or they may be presented as a dry product for reconstitution
with water or other suitable vehicle before use. Preparations for oral administration
may be suitably formulated to give controlled or postponed release of the active compound.
[0165] The active drugs of formula I may also be administered in the form of liposome delivery
systems, such as small unilamellar vesicles, large unilamellar vesicles and multilamellar
vesicles. Liposomes can be formed from a variety of phospholipids, such as cholesterol,
stearylamine or phosphatidylcholines, as is well known. Drugs of the invention containing
as active compound a compound of formula I may also be delivered by the use of monoclonal
antibodies as individual carriers to which the compound molecules are coupled. Active
drugs may also be coupled with soluble polymers as targetable drug carriers. Such
polymers include polyvinyl-pyrrolidone, pyran copolymer, polyhydroxy-propyl methacrylamide-phenol,
polyhydroxy-ethyl-aspartamide-phenol, or polyethyleneoxide-polylysine substituted
with palmitoyl residues. Furthermore, active drug may be coupled to a class of biodegradable
polymers useful in achieving controlled release of a drug, for example, polylactic
acid, polyglycolic acid, copolymers of polylactic and polyglycolic acid, polyepsilon
caprolactone, polyhydroxybutyric acid, polyorthoesters, polyacetals, polyhydropyrans,
polycyanoacrylates, and cross-linked or amphipathic block copolymers of hydrogels.
[0166] For administration by inhalation, the therapeutics according to the present invention
containing as active compound a compound of formula I may be conveniently delivered
in the form of an aerosol spray presentation from pressurized packs or a nebulizer,
with the use of a suitable propellant, e.g., dichlorodifluoromethane, trichlorofluoromethane,
dichlorotetra-fluoroethane, carbon dioxide, or other suitable gas. In the case of
a pressurized aerosol, the dosage unit may be determined by providing a valve to deliver
a metered amount. Capsules and cartridges of, e.g., gelatin for use in an inhaler
or insufflator can be formulated containing a powder mix of the compound and a suitable
powder base such as lactose or starch.
[0167] The formulations of the invention containing a compound of formula I may be delivered
parenterally, i.e., by intravenous (i.v.), intracerebroventricular (i.c.v.), subcutaneous
(s.c.), intraperitoneal (i.p.), intramuscular (i.m.), subdermal (s.d.), or intradermal
(i.d.) administration, by direct injection, via, for example, bolus injection or continuous
infusion. Formulations for injection can be presented in unit dosage form, e.g., in
ampoules or in multi-dose containers, with an added preservative. The compositions
can take such forms as excipients, suspensions, solutions, or emulsions in oily or
aqueous vehicles, and can contain formulatory agents such as suspending, stabilizing
and/or dispersing agents. Alternatively, the active ingredient can be in powder form
for reconstitution with a suitable vehicle, e.g., sterile pyrogen-free water, before
use.
[0168] Compositions of the present invention containing a compound of formula I may also
be formulated for rectal administration, e.g., as suppositories or retention enemas
(e.g., containing conventional suppository bases such as cocoa butter or other glycerides).
[0169] The compositions containing a compound of formula I may, if desired, be presented
in a pack or dispenser device, which may contain one or more unit dosage forms containing
the active ingredient and/or may contain different dosage levels to facilitate dosage
titration. The pack may, for example, comprise metal or plastic foil, such as a blister
pack.
[0170] Compositions of the invention formulated in a compatible pharmaceutical carrier may
also be prepared, placed in an appropriate container, and labeled for treatment of
an indicated condition.
[0171] As disclosed herein, the dose of the components in the compositions of the present
invention is determined to ensure that the dose administered continuously or intermittently
will not exceed an amount determined after consideration of the results in test animals
and the individual conditions of a patient.
[0172] A specific dose naturally varies depending on the dosage procedure, the conditions
of a patient or a subject animal such as age, body weight, sex, sensitivity, feed,
dosage period, drugs used in combination, seriousness of the disease. The appropriate
dose and dosage times under certain conditions can be determined by the test based
on the above-described indices but may be refined and ultimately decided according
to the judgment of the practitioner and each patient's circumstances (age, general
condition, severity of symptoms, sex, etc.) according to standard clinical techniques.
[0173] Toxicity and therapeutic efficacy of the compositions of the invention can be determined
by standard pharmaceutical procedures in experimental animals, e.g., by determining
the LD50 (the dose lethal to 50% of the population) and the ED50 (the dose therapeutically
effective in 50% of the population). The dose ratio between therapeutic and toxic
effects is the therapeutic index and it may be expressed as the ratio ED50/LD50. Compositions
that exhibit large therapeutic indices are preferred.
[0174] Hereinbelow, the preparation of the acylhydrazides of the formula I is illustrated
by examples; however, the subject matter of the present invention is not limited to
the examples given.
- 1) Pyridine-2-carboxylic acid [7-amino-pyrrolo[3,4-b]pyrazin-(5Z)-ylidene]-hydrazide

114 mg (0.88 mmol) Pyrazin-2,3-dicarbonitril and 110 mg (0.80 mmol) Pyridine-2-carboxylic
acid hydrazide were suspended in ethanol (EtOH), and the suspension was heated to
reflux for 20 min. The resulting solution was cooled to 50°C, 160 µl (0.080 mmol)
0.5 M NaOCH3 in methanol (MeOH) was added and the solution was heated to reflux for 8 h. After
cooling to room temperature (RT) 4 ml diethylether (Et2O) were added, the reddish precipitate was filtered, washed with Et2O and dried in vacuum to yield 119 mg of the title compound in form of a red brown
powder.
Mp: 261-264°C; MS: M+H = 268
1 H-NMR (DMSO): 11.9 (br, 1 H); 8.8 (s, 1 H); 8.9 (s, 1 H); 8.7 (s, 1 H); 8.6 (br,
2H); 8.2 (s, 1 H); 8.1 (s, 1H);7.7(s, 1 H)
- 2) 4-Dimethylamino-pyridine-2-carboxylic acid [1-amino-benzo[e]isoindol-(3Z)-ylidene]-hydrazide

118 mg (0.66 mmol) Naphthalene-1,2-dicarbonitrile and 108 mg (0.60 mmol) 4-Dimethylamino-pyridine-2-carboxylic
acid hydrazide were suspended in EtOH and the suspension was heated to reflux for
20 min. The resulting solution was cooled to 50°C, 120 µl (0.060 mmol) 0.5M NaOCH3 in MeOH was added and the solution was heated to reflux for 8 h. After cooling to
RT 3ml Et2O were added, the brownish precipitate was filtered, washed with Et2O and dried in vacuum to yield 215 mg of the title compound in form of a brown powder.
MS: M+H = 369; 1:2 mixture of regioisomers
1H-NMR (DMSO, major isomer): 12.0 (br, 1H);9.1 (d, 1 H); 8.4 (br, 2H); 8.3 (s, 1 H);
8.1 (m, 2H); 7.9 (d, 1 H); 7.6-7.8 (m, 2H); 7.4 (s, 1 H); 6.9 (s, 1 H); 3.2 (s, 6H)
- 3) 4-Morpholin-4-yl-pyridine-2-carboxylic acid [3-amino-isoindol-(1Z)-ylidene]-hydrazide

112 mg (0.77 mmol) 3-Imino-3H-isoindol-1-ylamine and 156 mg (0.70 mmol) 4-Morpholin-4-yl-pyridine-2-carboxylic
acid hydrazide were suspended in EtOH and the suspension was heated to reflux 4h.
After cooling to RT 3.5 ml Et2O were added, the yellow precipitate was filtered, washed with Et2O and dried in vacuum to yield 233 mg of the title compound in form of a yellow powder.
Mp: 300-301 °C; MS: M+H = 351
HRMS (MALDI; M+Na): 373.1388
1 H-NMR (DMSO): 12.0 (s, 1 H); 8.9 (br, 1 H); 8.7 (br, 1 H); 8.4 (s, 1 H); 8.0 (d,
1 H); 7.9 (d, 1 H); 7.7 (m, 3H); 7.1 (s, 1 H); 3.8 (s, 4H); 3.5 (s, 4H)
- 4) N-{3-[(Pyridine-2-carbonyl)-hydrazono]-3H-isoindol-1-yl}-acetamide

53 mg (0.20 mmol) Pyridine-2-carboxylic acid [3-amino-isoindol-(1Z)-ylidene]-hydrazide
known from Eur. J. of Org. Chem. (12) 2006, 2833-2842 were dissolved in 4 ml acetic anhydride (AC2O) and refluxed for 1 h. After cooling the yellow precipitate was filtrated and dried
in vacuum to yield 52 mg of the title compound in form of a yellow powder.
MS: M+H = 308; HRMS (MALDI; +Na): 330.0959
1 H-NMR (DMSO): 12.3 (s, 1 H); 11.6 (s, 1 H); 8.8 (s, 1 H); 8.3 (m, 2H); 8.2 (m, 1
H); 8.0 (s, 1 H); 7.6-7.8 (m, 3H); 2.5 (s, 3H)
- 5) 3-(2-(dimethylamino)ethylthio)phthalonitril

692 mg (4.0 mmol) 3-Nitrophthalonitril, 623 mg (4.4 mmol) 2-(dimethylamino)-ethanethiol
hydrochloride and 1399 mg (13.2 mmol) were suspended in DMF and stirred at RT for
2h. The suspension was added to a mixture of 20 ml brine and 20 ml water, the colorless
crystals were filtrated, washed with water and dried in vacuum to yield 820 mg of
the title compound in form of a colorless powder. MS: M+H = 232
1 H-NMR (CDCl3): 7.5-7.7 (m, 3H); 3.1 (d, 2H); 2.6 (m, 2H); 2.2 (m, 6H)
- 6) Isoquinoline-3-carboxylic acid [3-amino-4-(2-dimethylamino-ethylsulfanyl)-isoindol-(1
Z)-ylidene]-hydrazide

102 mg (0.44 mmol) 3-(2-(dimethylamino)ethylthio)phthalonitril and 75 mg (0.40 mmol)
Isoquinoline-3-carboxylic acid hydrazide were suspended in EtOH and the suspension
was heated to reflux for 20 min. The resulting solution was cooled to 50°C, 80 µl
(0.040 mmol) 0.5 M NaOMe in MeOH was added and the solution was heated to reflux for
4 h. After cooling to RT 2 ml Et2O were added, the yellow precipitate was filtered, washed with Et2O and dried in vacuum to yield 30 mg of the title compound in form of a yellow powder.
Mp: 269-271°C; MS: M+H = 419; HRMS (MALDI, M+Na): 441.1460
1 H-NMR (DMSO): 12.1 (s, 1 H); 9.4 (s, 1 H); 8.7 (s, 1 H); 8.5 (br, 2H); 8.3 (m, 2H);
7.9 (m, 2H); 7.7 (s, 1 H); 7.5 (m, 2H); 3.2 (m, 2H); 2.6 (m, 2H); 2.2 (s, 6H)
- 7) 4-Methoxy-pyridine-2-carboxylic acid [3-amino-isoindol-(1Z)-ylidene]-hydrazide

174 mg (1.2 mmol) 3-Imino-3H-isoindol-1-ylamine and 181 mg (1.1 mmol) 4-Methoxy-pyridine-2-carboxylic
acid hydrazide were suspended in EtOH and the suspension was heated to reflux 8 h.
After cooling to RT 3 ml Et2O were added, the yellow precipitate was filtered, washed with Et2O and dried in vacuum to yield 265 mg of the title compound in form of a yellow powder.
Mp: 297-298°C; MS: M+H = 296; HRMS (MALDI; M+Na): 318.0969
1 H-NMR (DMSO): 11.8 (s, 1 H); 8.8 (s, 1 H); 8.6 (s, 1 H); 8.5 (s, 1 H); 7.9 (d, 1
H); 7.8 (s, 1 H); 7.7 (s, 1 H); 7.5 (m, 2H); 7.2 (d, 1 H); 3.9 (s, 3H)
- 8) 4-Methoxy-pyridine-2-carboxylic acid [3-amino-isoindol-(1Z)-ylidene]-hydrazide
hydrochloride

50 mg (0.17 mmol) 4-Methoxy-pyridine-2-carboxylic acid [3-amino-isoindol-(1Z)-ylidene]-hydrazide
were suspended in 2ml 1M HCl/MeOH, evaporated on a Rotovap at 50°C and dried in vacuum
to yield 57 mg of the title compound in form of a yellow powder.
MS: M+H = 296
- 9) 1-Methyl-1H-imidazole-2-carboxylicacid [3-amino-isoindol-(1Z)-ylidene]-hydrazide

282 mg (2.2 mmol) Phthalonitril and 280 mg (2.0 mmol) 1-Methyl-1 H-imidazole-2-carboxylic
acid hydrazide were suspended in EtOH and the suspension was heated to reflux for
20 min. The resulting solution was cooled to 50°C, 400 µl (0.20 mmol) 0.5 M NaOMe
in MeOH was added and the solution was heated to reflux for 4 h. After cooling to
RT 10 ml Et2O were added, the yellow precipitate was filtered, washed with Et2O and dried in vacuum to yield 345 mg of the title compound in form of a yellow powder.
Mp: 278-280°C; MS: M+H = 269
1 H-NMR (DMSO): 11.3 (br, 1 H); 8.6 (br, 2H); 7.9 (d, 1 H); 7.8 (s, 1 H); 7.6 (m,
2H); 7.4 (s, 1 H); 7.0 (s, 1 H); 4.0 (s, 3H)
- 10) Pyridine-2-carboxylic acid [3-amino-4-[4-(2,2-dimethyl-propionyl)-piperazin-1-yl]-isoindol-(1
Z)-ylidene]-hydrazide

420 mg (1.98 mmol) 3-[4-(2,2-Dimethyl-propionyl)-piperazin-1-yl]-phthalonitrile and
247 mg (1.80 mmol) pyridine-2-carboxylic acid hydrazide were suspended in EtOH and
the suspension was heated to reflux for 20 min. The resulting solution was cooled
to 50°C, 360 µl (0.180 mmol) 0.5 M NaOMe in MeOH was added and the solution was heated
to reflux for 8 h. After cooling to RT 9 ml Et2O were added, the yellow precipitate was filtered, washed with Et2O and dried in vacuum to yield 75 mg of the title compound in form of a yellow powder.
Mp: 319-320°C; MS: M+H = 434; HRMS (MALDI, M+Na): 456.2126
1 H-NMR (DMSO): 11.8 (s, 1 H); 9.0 (s, 1 H); 8.7 (s, 1 H); 8.2 (d, 1 H); 8.1 (t, 1
H); 7.7 (m, 1 H); 7.6 (m, 3H); 7.4 (s, 1 H); 3.6 (br, 4H); 3.0 (br, 4H); 1.2 (s, 9H)
[0175] Further 3-imino-3H-isoindol-1-ylamines of formula V, 3-hydrazono-3H-isoindol-1-ylamines
of formula VI and acylhydrazides of formula I have been prepared inaccordance to the
processes described above, and are, in addition to the compounds mentioned above,
listed in tables 2 to 8 below.

I with R
1 = A
1, where R
5, R
6, R
7 and R
8 are H; R
2+R
3 form B1; R
4=H
Table 2
| No |
R10 |
R11 |
R12 |
R13 |
Salt |
LCMS (M+H) |
| 2.1. |
H |
H |
H |
H |
-- |
266 |
| 2.2. |
H |
H |
H |
H |
HCl |
266 |
| 2.3. |
H |
NO2 |
H |
H |
-- |
311 |
| 2.4. |
H |
C(CH3)3 |
H |
H |
-- |
322 |
| 2.5. |
H |
SO2C6H5 |
H |
H |
-- |
406 |
| 2.6. |
H |
H |
CH3 |
H |
-- |
280 |
| 2.7. |
H |
H |
O(n-C6H13) |
H |
-- |
366 |
| 2.8. |
H |
H |
O-(n-C12H25) |
H |
-- |
451 |
| 2.9. |
H |
H |
OCH2CH2-OCH3 |
H |
-- |
340 |
| 2.10. |
H |
H |
O(C6H4)O-(n-C4H9) |
H |
-- |
431 |
| 2.11. |
H |
H |
NH2 |
H |
-- |
281 |
| 2.12. |
H |
H |
piperazinyl |
H |
-- |
350 |
| 2.13. |
H |
H |
piperazinyl |
H |
-- |
400 |
| 2.14. |
H |
H |
4-hydroxy-piperinyl |
H |
-- |
365 |
| 2.15. |
H |
H |
SC6H5 |
H |
-- |
374 |
| 2.16. |
H |
H |
O(4-C(CH3)3-C6H4) |
H |
-- |
414 |
| 2.17. |
H |
H |
H |
OCH2CHF2 |
-- |
346 |
| 2.18. |
H |
H |
H |
SCH2CH2-N(CH3)2 |
-- |
370 |
| 2.19. |
H |
H |
H |
C6H5 |
-- |
342 |
| 2.20. |
H |
H |
H |
O(2-F-C6H4) |
-- |
376 |
| 2.21. |
H |
Cl |
Cl |
H |
-- |
450 |
| 2.22. |
H |
CO2CH3 |
CO2CH3 |
H |
-- |
382 |
| 2.23. |
F |
H |
H |
H |
-- |
284 |
| 2.24. |
F |
H |
H |
H |
-- |
314 |
| 2.25. |
F |
F |
F |
F |
-- |
383 |
| 2.26. |
Cl |
H |
H |
H |
-- |
301 |
| 2.27. |
NO2 |
H |
H |
H |
-- |
311 |
| 2.28. |
NO2 |
H |
H |
H |
HCl |
311 |
| 2.29. |
OCH3 |
H |
H |
H |
-- |
296 |
| 2.30. |
OCH3 |
H |
H |
CH3 |
-- |
310 |
| 2.31. |
OCH2CHF2 |
H |
H |
H |
-- |
346 |
| 2.32. |
OCH2CF3 |
H |
H |
H |
-- |
364 |
| 2.33. |
OCH2CF3 |
H |
H |
H |
HCl |
364 |
| 2.34. |
OCH2CH2OH |
H |
H |
H |
-- |
326 |
| 2.35. |
OCH2CHCH2 |
H |
H |
H |
-- |
322 |
| 2.36. |
OCH2CH2O-CH3 |
H |
H |
H |
-- |
340 |
| 2.37. |
SCH2CH2OH |
H |
H |
H |
-- |
342 |
| 2.38. |
SCH2CH2CH2 OH |
H |
H |
H |
-- |
356 |
| 2.39. |
SCH2CH2-N(CH3)2 |
H |
H |
H |
-- |
370 |
| 2.40. |
SCH2CH2-N(CH3)2 |
H |
H |
H |
HCl |
370 |
| 2.41. |
SCH2CH2-N(CH2CH3)2 |
H |
H |
H |
-- |
398 |
| 2.42. |
NHCH2(C6H5) |
H |
H |
H |
-- |
371 |
| 2.43. |
SO2N(CH3)2 |
H |
H |
H |
-- |
373 |
| 2.44. |
SO2N(CH3)2 |
H |
H |
H |
HCl |
373 |
| 2.45. |
SO2N(C2H5)2 |
H |
H |
H |
-- |
401 |
| 2.46. |
morpholinyl |
H |
H |
H |
-- |
395 |
| 2.47. |
N-morpholinyl |
H |
H |
H |
-- |
351 |
| 2.48. |
NHCH2CH2-N-morpholinyl |
H |
H |
H |
-- |
515 |
| 2.49. |
SCH2CH2-N-morpholinyl |
H |
H |
H |
-- |
412 |
| 2.50. |
piperazinyl |
H |
H |
H |
-- |
350 |
| 2.51. |
piperazinyl |
H |
H |
H |
-- |
407 |
| 2.52. |
N-methyl-piperazinyl |
H |
H |
H |
-- |
364 |
| 2.53. |
pivaloyl-piperazinyl |
H |
H |
H |
-- |
435 |
| 2.54. |
N-allyl-piperazinyl |
H |
H |
H |
-- |
391 |
| 2.55. |
NH-adamantyl |
H |
H |
H |
-- |
416 |
| 2.56. |
C6H5 |
H |
H |
H |
-- |
342 |
| 2.57. |
OC6H5 |
H |
H |
H |
-- |
358 |
| 2.58. |
O(2-F-C6H4) |
H |
H |
H |
-- |
376 |
| 2.59. |
O(4-F-C6H4) |
H |
H |
H |
-- |
376 |
| 2.60. |
O(2-CH3-C6H4) |
H |
H |
H |
-- |
372 |
| 2.61. |
O(4-OCH3-C6H4) |
H |
H |
H |
-- |
388 |
| 2.62. |
SC6H5 |
H |
H |
H |
-- |
374 |
| 2.63. |
SC6H5 |
H |
H |
H |
HCl |
374 |
| 2.64. |
SO2CH2-CH2OH |
H |
H |
H |
-- |
374 |
| 2.65. |
S(4-Cl-C6H4) |
H |
H |
H |
-- |
409 |

I with R
1 = A1; R
2 + R
3 form B1, wherein R
10, R
11, R
12 and R
13 are H; R
4 = H
Table 3
| No |
R5 |
R6 |
R7 |
R8 |
Salt |
LCMS (M+H) |
| 3.1. |
CH3 |
H |
H |
H |
-- |
280 |
| 3.2. |
CF3 |
H |
H |
H |
-- |
334 |
| 3.3. |
OH |
H |
H |
H |
-- |
282 |
| 3.4. |
OH |
H |
H |
H |
HCl |
282 |
| 3.5. |
OCH3 |
H |
H |
H |
-- |
296 |
| 3.6. |
C6H5 |
H |
H |
H |
-- |
342 |
| 3.7. |
H |
CH3 |
H |
H |
-- |
280 |
| 3.8. |
H |
CH2CH2CH2CH3 |
H |
H |
-- |
322 |
| 3.9. |
H |
Cl |
H |
H |
-- |
300 |
| 3.10. |
H |
CN |
H |
H |
-- |
291 |
| 3.11. |
H |
NO2 |
H |
H |
-- |
311 |
| 3.12. |
H |
N(C2H5)2 |
H |
H |
-- |
337 |
| 3.13. |
H |
H |
Cl |
H |
-- |
300 |
| 3.14. |
H |
H |
l |
H |
-- |
392 |
| 3.15. |
H |
H |
CN |
H |
-- |
291 |
| 3.16. |
H |
H |
OCH3 |
H |
-- |
296 |
| 3.17. |
H |
H |
OCH3 |
H |
HCl |
296 |
| 3.18. |
H |
H |
N(CH3)2 |
H |
-- |
309 |
| 3.19. |
H |
H |
morpholinyl |
H |
-- |
351 |
| 3.20. |
H |
H |
C6H5 |
H |
-- |
342 |
| 3.21. |
H |
H |
H |
OH |
-- |
282 |
| 3.22. |
-C6H4- |
H |
H |
-- |
316 |
| 3.23. |
H |
-C6H4- |
H |
-- |
316 |
| 3.24. |
H |
OCH3 |
Cl |
H |
-- |
330 |

I with R
1 = A1 where R
8 is H; R
2 + R
3 form B1; R
4 = H
Table 4
| No |
R5 |
R6 |
R7 |
R10 |
R11 |
R12 |
R13 |
LCMS (M+H) |
| 4.1 |
H |
CH2CH2-CH2CH3 |
H |
F |
H |
H |
H |
322 |
| 4.2 |
H |
CH2CH2-CH2CH3 |
H |
H |
H |
H |
SCH2CH2-N(CH3)2 |
426 |
| 4.3 |
H |
H |
Cl |
SCH2CH2-N(CH3)2 |
H |
H |
H |
403 |
| 4.4 |
H |
NO2 |
H |
H |
Cl |
Cl |
H |
379 |
| 4.5 |
H |
H |
Cl |
F |
F |
F |
F |
372 |
| 4.6 |
H |
-C6H4--C6H4- |
F |
H |
H |
H |
334 |
| 4.7 |
H |
-C6H4--C6H4- |
H |
H |
H |
SCH2CH2-N(CH3)2 |
420 |
| 4.8 |
CF3 |
H |
H |
H |
Cl |
Cl |
H |
402 |
| 4.9 |
C6H5 |
H |
H |
H |
Cl |
Cl |
H |
410 |
| 4.10 |
C6H5 |
H |
H |
H |
-C6H4- |
H |
392 |

I with R
2 + R
3 form B1
Table 5
| No |
R1 |
R4 |
R10 |
R11 |
R12 |
R13 |
Salt |
LCMS (M+H) |
| 5.1 |
4-imidazolyl |
H |
H |
H |
H |
H |
-- |
255 |
| 5.2 |
2-(1-methylimidazolyl) |
H |
H |
H |
H |
H |
-- |
269 |
| 5.3 |
2-(1-methylimidazolyl) |
H |
H |
H |
H |
H |
HCl |
269 |
| 5.4 |
4-(1-methylimidazolyl) |
H |
SO2N-(CH2CH3)2 |
H |
H |
H |
-- |
404 |
| 5.5 |
4-(1-methylimidazolyl) |
H |
F |
H |
H |
H |
-- |
287 |
| 5.6 |
4-(1-methylimidazolyl) |
H |
H |
H |
H |
H |
-- |
269 |
| 5.7 |
2-(5-C(CH3)3)-oxazolyl |
H |
H |
H |
H |
H |
-- |
312 |
| 5.8 |
3-(5-CH3)-isoxazolyl |
H |
H |
H |
H |
H |
-- |
270 |
| 5.9 |
3-(5-CH2OH)-isoxazolyl |
H |
H |
H |
H |
H |
-- |
286 |
| 5.10 |
3-(5-C6H5)-isoxazolyl |
H |
H |
H |
H |
H |
-- |
332 |
| 5.11 |
3-benzoisothiazolyl |
H |
H |
H |
H |
H |
-- |
322 |
| 5.12 |
2-(5-CH3)thiadiazolyl |
H |
H |
H |
H |
H |
-- |
287 |
| 5.13 |
2-pyrazinyl |
H |
H |
H |
H |
H |
-- |
267 |
| 5.14 |
2-pyrazinyl |
H |
F |
F |
F |
F |
-- |
339 |
| 5.15 |
2-pyrazinyl |
H |
H |
-C6 |
H4- |
H |
-- |
317 |
| 5.16 |
2-(5-methylpyrazinyl) |
H |
H |
H |
H |
H |
-- |
281 |
| 5.17 |
2-pyridyl |
(CO)CH3 |
H |
H |
H |
H |
-- |
308 |
| 5.18 |
3-pyridinyl |
H |
H |
H |
H |
H |
-- |
266 |
| 5.19 |
4-pyridinyl |
H |
H |
H |
H |
H |
-- |
266 |
| 5.20 |
6-(imidazolopyridinyl) |
H |
H |
H |
H |
H |
-- |
305 |
| 5.21 |
2-thiophenyl |
H |
H |
H |
H |
H |
-- |
271 |
| 5.22 |
3-isoquinolinyl |
(CO)CH3 |
H |
H |
H |
H |
-- |
358 |

I with R
1 = A1; R
4 = H
Table 6
| No. |
R2 and R3 together form |
R5 |
R6 |
R7 |
R8 |
Salt |
LCMS (M+H) |
| 6.1 |
3,4-thienyl |
H |
H |
H |
H |
-- |
272 |
| 6.2 |
5,6-dimethy-2,3-pyrazinyl |
H |
H |
H |
H |
-- |
296 |
| 6.3 |
2,3-pyrazinyl |
H |
H |
H |
H |
-- |
268 |

I with R
1 = A1 where R
5, R
7, R
8 = H; R
2 + R
3 form B3 R
4 with R
10, R
13, R
14, R
15, R
16, R
17 = H; R
4=H
Table 7
| No |
R6 |
Salt |
LCMS (M+H) |
| 7.1 |
H |
-- |
316 |

I with R
1 = A1 where R
5 and R
8 = H; R
2 + R
3 form B4 where R
12 to R
17 = H; R
4 = H
Table 8
| No |
R6 |
R7 |
Salt |
LCMS (M+H) |
| 8.1 |
H |
H |
-- |
316 |
| 8.2 |
H |
H |
HCl |
316 |
| 8.3 |
CH3 |
H |
-- |
330 |
| 8.4 |
CH3 |
H |
HCl |
330 |
| 8.5 |
CH2CH2CH2CH3 |
H |
-- |
372 |
| 8.6 |
Cl |
H |
-- |
350 |
| 8.7 |
H |
Cl |
-- |
350 |
| 8.8 |
H |
OCH3 |
-- |
346 |
| 8.9 |
H |
N(CH3)2 |
-- |
359 |
| 8.10 |
H |
N(CH3)2 |
HCl |
359 |
| 8.11 |
H |
morpholinyl |
-- |
401 |
| 8.12 |
H |
C6H5 |
-- |
392 |
| 8.13 |
-C6H4- |
-- |
366 |
Use examples
[0176] The herbicidal activity of the acylhydrazides of the formula I was demonstrated by
the following greenhouse experiments:
The culture containers used were plastic flowerpots containing loamy sand with approximately
3.0% of humus as the substrate. The seeds of the test plants were sown separately
for each species.
[0177] For the pre-emergence treatment, the active ingredients, which had been suspended
or emulsified in water, were applied directly after sowing by means of finely distributing
nozzles. The containers were irrigated gently to promote germination and growth and
subsequently covered with transparent plastic hoods until the plants had rooted. This
cover caused uniform germination of the test plants, unless this has been impaired
by the active ingredients.
[0178] For the post-emergence treatment, the test plants were first grown to a height of
2 to 5 cm, depending on the plant habit, and only then treated with the active ingredients
which had been suspended or emulsified in water. For this purpose, the test plants
were either sown directly and grown in the same containers, or they were first grown
separately as seedlings and transplanted into the test containers a few days prior
to treatment.
[0179] Depending on the species, the plants were kept at 10 - 25°C or 20 - 35°C. The test
period extended over 8 to 9 days. During this time, the plants were tended, and their
response to the individual treatments was evaluated.
[0180] Evaluation was carried out using a scale from 0 to 100. 100 means no emergence of
the plants, or complete destruction of at least the aerial moieties, and 0 means no
damage, or normal course of growth. A good herbicidal activity is given at values
of at least 70 and a very good herbicidal activity is given at values of at least
85.
[0181] The plants used in the greenhouse experiments belonged to the following species:
| Bayer Code |
Scientific Name |
Common Name |
| MATIN |
Matricaria inodora |
False chamomile |
| AGSST |
Agrostis stolonifera |
Creeping bentgrass |
[0182] At an application rate of 2 kg/ha, the compounds 2.16, 2.24, 2.27, 2.34, 2.37, 2.39,
2.43, 2.49, 3.9, 3.14, 3.20, 6.3 and 8.3 applied by the post-emergence method, showed
very good herbicidal activity against MATIN. Compound 3.11 showed good activity on
AGSST.
[0183] At an application rate of 2 kg/ha, the compound 2.43 applied by the pre-emergence
method, showed good herbicidal activity against MATIN. Compound 5.14 showed good activity
against AGSST.
[0185] The following compounds showed very good activity in this assay (IC50<100ng/ml):
The following compounds showed good activity in this assay (IC50<1000ng/ml): For the
activity of the acylhydrazides of the formula I against Mycobacteria an assay described
in Hawkins, J.E., Wallace Jr., R.J., Brown, A.; 1991, Antibacterial susceptibility test:
Mycobacteria: in A. Balows,W. et al. Manual of Clinical Microbiology, 5th edn., American
Society of Microbiology, Washington D.C., has been used.